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לפני 8 שעות
חברה חסויה
Location: Ramat Gan
Job Type: Full Time
Were looking for a hands-on AI Engineering Tech Lead to define and drive AI-native engineering practices, lead the architecture and development of scalable, intelligent systems, and embed AI across the software development lifecycle. This role involves providing technical leadership, identifying and solving architectural challenges, and collaborating cross-functionally to deliver high-impact, production-grade solutions.


Responsibilities:
Define and codify AI-native engineering practices, patterns, and guidelines to elevate the software development lifecycle.
Provide technical leadership and mentorship, fostering an AI-first engineering culture across teams.
Architect and lead the development of AI-native system frameworks that emphasize modularity, extensibility, and adaptive scalability.
Identify architectural risks, systemic bottlenecks, and long‑term scalability concerns - and proactively drive solutions.
Collaborate closely with Product, Customer success, Security and Business stakeholders to ensure technical solutions deliver real business impact.
Requirements:
Requirements
Hands-on experience (6y+) with distributed systems, microservices, and cloud-native technologies.
Proven ability to leverage AI-assisted engineering to drive operational excellence, from generating robust test suites to automating the detection of scalability bottlenecks in distributed systems.
A pragmatic mindset that balances engineering excellence with business needs.
Strong proven technical skills building features end-to-end and passion for large-scale production services, data modeling and databases.
Strong experience with AWS/Azure/GCP and a passion for building highly observable, resilient systems.
Strong communication skills, empathetic, and someone who thrives working in a fast-paced environment.
Prior experience in deploying and maintaining a high scale, multi-region production-grade system.


Advantages
Experienced in B2B Cyber Security / Cloud Security / Identity & Access Management / Encryption Keys Management.
Deep understanding of the Kubernetes ecosystem and modern platform engineering practices.
Hands-on experience building or integrating AI agents and workflows.
This position is open to all candidates.
 
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לפני 12 שעות
דרושים בהראל ביטוח ופיננסים
מיקום המשרה: רמת גן
סוג משרה: משרה מלאה
הזדמנות להשתלב בחטיבה הבונה את הדור הבא של פתרונות הבינה המלאכותית בעולם הביטוח והפיננסים!

אנחנו מחפשים AI Engineer מנוסה לתפקיד hands-on המתמקד בבניית Smart Agents, פתרונות RAG ומערכות LLM-based המשמשות יחידות עסקיות, תפעוליות ודיגיטליות בארגון ומשולבות בתהליכי הליבה שלו.

במסגרת התפקיד:
פיתוח מערכות אג'נטיות (Agentic Systems), כולל LLM Agents ו-RAG pipelines
עבודה עם Claude Agent SDK לבניית מערכות Multi-Agent מורכבות, כולל Tool Integration ואינטגרציות MCP למערכות הליבה של הארגון
הובלה של תהליכי AI Evaluation, כולל בניית Evaluation Frameworks, מדדים ו-A/B Testing
דרישות:
תואר ראשון באחד התחומים הבאים: מדעי המחשב / הנדסת תוכנה / מדעי הנתונים או תחום מקביל אחר
שנות ניסיון חזק ומוכח בפיתוח Python כתיבת קוד נקי, איכותי ומבוסס Best Practices
ניסיון מוכח בכתיבת קוד בסביבת ייצור: בעלות על מערכות חיות ותהליכי CI/CD
ניסיון מוכח בפיתוח LLM-based Agents, מערכות RAG ואינטגרציה למערכות תוכנה קיימות
ניסיון מעשי עם Claude Agent SDK ובניית סוכנים בסביבת ייצור, או ב-framework אחר לפיתוח מערכות Multi-Agent
הבנה עמוקה ב-Model Evaluation, מדידת ביצועים ו-Experimentation
ניסיון בעבודה עם Cloud Platforms (AWS / Azure)


אנחנו על המפה: מתחם הבורסה, צמוד לרכבת סבידור ולרכבת הקלה. 
* המשרה מיועדת לנשים ולגברים כאחד.
 
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לפני 13 שעות
דרושים בהראל ביטוח ופיננסים
מיקום המשרה: רמת גן
סוג משרה: משרה מלאה
זו ההזדמנות להצטרף לצוות AI מוביל, לבנות ולהפעיל תשתיות מתקדמות עבור מערכות GenAI ולהשפיע ישירות על ליבת הפעילות העסקית של הראל.

איך יראה היומיום שלך?
הובלת ההטמעה והתפעול של פלטפורמות GenAI ו‑LLM בארגון
ניהול הממשק השוטף מול צוותי IT, תשתיות, אבטחת מידע וארכיטקטורה
הובלת תהליכי Onboarding של פתרונות AI לסביבות Production.
תכנון והטמעת תהליכי LLMOps ו‑MLOps.
עבודה מול ספקים ויצרנים טכנולוגיים
הגדרת סטנדרטים, Governance, ניטור ובקרות לפתרונות AI ארגוניים
תמיכה בצוותי הפיתוח וה‑AI בהיבטי תשתיות, הרשאות, סביבות עבודה ופריסה
דרישות:
מה אנחנו מחפשים?
ניסיון של מספר שנים בניהול תשתיות, ארכיטקטורה או DevOps.
ניסיון משמעותי בעבודה מול צוותי IT וגורמי תשתיות בארגון גדול
הבנה עמוקה ב‑Cloud, Kubernetes, Networking ואבטחת מידע
היכרות עם עולמות GenAI, LLMs, RAG ו‑Agents.
יכולת להוביל פרויקטים מרובי ממשקים ולהניע תהליכים מקצה לקצה
יכולות תקשורת גבוהות וראייה מערכתית

משרה מלאה, א'-ה', 8.5 שעות ביום
אנו ממוקמים ברמת גן, מתחם הבורסה, סמוך לרכבת סבידור מרכז והרכבת הקלה
* המשרה מיועדת לנשים ולגברים כאחד.
 
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לפני 14 שעות
דרושים בהראל ביטוח ופיננסים
מיקום המשרה: רמת גן
סוג משרה: משרה מלאה
ליווי צוותי הפיתוח משלב האפיון ועד העלייה ל-Production
הובלת Design Reviews, פתרון בעיות טכנולוגיות מורכבות וקבלת החלטות ארכיטקטוניות
הובלה מקצועית של יוזמות טכנולוגיות והטמעת Best Practices
עבודה שוטפת מול מפתחים, PM וגורמים עסקיים
חניכה והכוונה מקצועית של מפתחים
הובלת שילוב יכולות AI וכלים אג'נטיים לשיפור תהליכי הפיתוח והיעילות הארגונית
דרישות:
לפחות 7 שנות ניסיון בפיתוח תוכנה- חובה
ניסיון בהובלה טכנולוגית של צוותים ופרויקטים- חובה
היכרות עם AI, LLMs וכלים אג'נטיים- חובה
כולת הובלה, השפעה ועבודה מול מגוון ממשקים
יכולת מוכחת בפתרון בעיות טכנולוגיות מורכבות
ניסיון ב-Cloud, Microservices, DevOps וארכיטקטורת מערכות-חובה

משרה מלאה, 8.5 שעות ביום
אנו יושבים ברמת גן, מתחם הבורסה, סמוך לרכבת סבידור מרכז והרכבת הקלה
* המשרה מיועדת לנשים ולגברים כאחד.
 
עוד...
הגשת מועמדות
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20/08/2026
Location: Ramat Gan
Job Type: Full Time and Hybrid work
We are looking for a Staff Architect, Data & AI Infra to shape, build, and scale the infrastructure that powers our data, AI, and research platforms. This is a senior player-coach role with broad architectural ownership across data infrastructure, ML infrastructure, developer experience, reproducibility, and production reliability. You will work across the wider engineering group as a hands-on technical architect, while also managing a small team of individual contributors focused on ML infrastructure.

This role is ideal for someone who can move between long-term platform architecture and practical execution: defining standards, building core systems, mentoring engineers, improving reliability, and partnering with Data Engineering, AI/Research, Product Engineering, Security, Bioinformatics, and Leadership to make our data and AI platforms scalable, reproducible, secure, compliant, and easier to use.

Location: Ramat Gan, Israel (hybrid model)

What will you do?

Architectural Leadership: Own and evolve the technical roadmap for our data and AI platforms, ensuring scalable and reliable architecture that supports current needs and prepares for a multi-cloud future.
MLOps & Platform Development: Design and build end-to-end MLOps systems-covering experimentation, training, reproducibility, and deployment-while managing specialized infrastructure like BigQuery, orchestration tools (Dagster/Airflow), and R/Python workloads.
Infrastructure Strategy: Define and lead strategy for GPU resources (scheduling, utilization, batch compute) and establish engineering best practices, data architecture standards, and platform guardrails.
Developer Experience: Enhance developer productivity by building self-service platforms, automation, internal tooling, and reusable templates that simplify workflows and reduce operational friction.
Team Leadership: Act as a player-coach to mentor engineers and manage a small team of ICs, fostering a culture of sound decision-making and technical excellence across the broader group.
Security & Reliability: Partner with Security to enforce compliance (SOC2, HIPAA, GDPR) and access controls, while mitigating operational risk through improved observability, incident readiness, and robust support processes.
Requirements:
Required qualifications:
8+ years of industry experience in infrastructure, platform, data, or ML engineering, with a deep background in designing production infrastructure for data-intensive or AI/ML systems.
Hands-on expertise building and operating MLOps systems (for model development, training, and deployment) and managing GPU infrastructure, including scheduling, resource management, and utilization.
Proficient in managing data infrastructure technologies (e.g., BigQuery, data warehouses, object storage, orchestration systems like Dagster or Airflow) and operating within Kubernetes/containerized environments.
Demonstrated ability as a player-coach, including people-management experience or leading small engineering teams, with a focus on mentoring senior engineers and influencing technical direction.
Strong communication skills with the ability to partner effectively across diverse groups, including Data Engineering, AI/Research, Product Engineering, Security, Bioinformatics and Leadership.

Preferred qualifications:
Developer Platform & Velocity: Proven ability to build internal developer platforms, "golden paths," and self-service infrastructure that reduce operational friction and streamline workflows for research and engineering teams.
AI-First Transformation: Experience leading or guiding software and data engineering teams through the transition toward AI-first development processes, fostering adoption of new paradigms and tooling.
Compliance & Domain Expertise: Strong background operating within regulated environments (SOC2, HIPAA, GDPR) and applying infrastructure best practices to domain-specific fields such as biotech, life sciences, or bioinformatics.
This position is open to all candidates.
 
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חברה חסויה
Location: Ramat Gan
Job Type: Full Time
Were looking for an AI Software Engineer to own the RL Gym platform end-to-end: from architecting multi-site web environments that simulate real-world attack surfaces, to optimizing our in-house orchestration harness (AgenticVerse) for high-performance delivery into customer training pipelines.
This is a builder role. Youll lead a small team (including a dedicated web environments engineer), operating with high autonomy, moving fast from concept to working prototype to production system. Youll interact directly with customer engineering teams to understand their infrastructure constraints and deliver environments that meet their scale and reliability requirements.
Why this role
This is one of the few roles in the industry where your code directly influences how the next generation of AI models are trained. Youll be at the center of advancing AI safety, building systems that the worlds top labs depend on to make their models more robust. The work is technically deep, the problem space is genuinely novel, and the field is moving faster than any team can keep up with alone. Theres no playbook. Youll write it.
What youll do:
Platform & performance
Own and evolve AgenticVerse, our in-house orchestration harness that provisions and manages RL environments at scale. Focus on performance: low-latency provisioning, high concurrency, minimal overhead per environment instance
Design and build isolated, reproducible web environments using Firecracker microVMs or Docker containers
Architect multi-site scenarios (3-4 interconnected web applications per task) with rich interactions: drag-and-drop, file uploads, authentication flows, LLM-in-the-loop components
Implement deterministic verifiers that evaluate agent behavior with zero ambiguity
Customer delivery
Work directly with engineering teams at leading AI labs to integrate RL Gym environments into their training and evaluation pipelines
Translate customer specs into working environments, iterating rapidly on feedback
Own the technical relationship: SLAs, API contracts, integration architecture
Adapt environment delivery formats to cus tomer infrastructure (real-time API calls vs. offline batch, managed vs. raw artifacts)
Build customer-facing UIs when needed (dashboards, environment configuration portals, monitoring interfaces)
Rapid prototyping
Take ambiguous problem descriptions and produce working prototypes within days, not weeks
Validate new environment types, interaction patterns, and verifier approaches quickly
Build internal tooling that accelerates scenario authoring and testing.
Requirements:
Must have
8+ years of software engineering experience, with a track record of building production systems from zero
Deep expertise in infrastructure: Linux, containers (Docker), VMs (Firecracker or similar), networking, cloud platforms (AWS strongly preferred)
Strong Python skills and comfort with async/concurrent systems
Experience building platforms or developer tools (not just consuming them)
Full-stack capability: backend services, infrastructure-as-code, APIs, and frontend development (React or similar) for customer-facing interfaces
Demonstrated ability to work autonomously with minimal specification, making sound architectural decisions under ambiguity
Comfort working directly with external customers and translating technical constraints into engineering solutions
English fluency (written and verbal) for customer-facing communication
Nice to have
Experience with reinforcement learning infrastructure, training pipelines, or evaluation frameworks
Background in security, adversarial testing, or trust & safety systems
Familiarity with browser automation, headless browsers, or web scraping at scale
Experience with Kubernetes operators or custom schedulers
Prior work in a 0-to-1 environment (startup, innovation lab, or R&D team building new products).
This position is open to all candidates.
 
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מודים לך שלקחת חלק בשיפור התוכן שלנו :)
25/08/2026
חברה חסויה
Location: Ramat Gan
Job Type: Full Time
Alice’s Innovation team builds adversarial RL environments that train the world’s most advanced AI models to be safer. Our customers are the leading frontier AI labs, who use these environments for post-training reinforcement learning and safety evaluation. This is the bleeding edge of AI safety technology: the environments you build will directly shape how next-generation models learn to resist adversarial attacks. We’re looking for an AI Software Engineer to own the RL Gym platform end-to-end: from architecting multi-site web environments that simulate real-world attack surfaces, to optimizing our in-house orchestration harness (AgenticVerse) for high-performance delivery into customer training pipelines. This is a builder role. You’ll lead a small team (including a dedicated web environments engineer), operating with high autonomy, moving fast from concept to working prototype to production system. You’ll interact directly with customer engineering teams to understand their infrastructure constraints and deliver environments that meet their scale and reliability requirements. Why this role This is one of the few roles in the industry where your code directly influences how the next generation of AI models are trained. You’ll be at the center of advancing AI safety, building systems that the world’s top labs depend on to make their models more robust. The work is technically deep, the problem space is genuinely novel, and the field is moving faster than any team can keep up with alone. There’s no playbook. You’ll write it. What you’ll do: Platform & performance
* Own and evolve AgenticVerse, our in-house orchestration harness that provisions and manages RL environments at scale. Focus on performance: low-latency provisioning, high concurrency, minimal overhead per environment instance
* Design and build isolated, reproducible web environments using Firecracker microVMs or Docker containers
* Architect multi-site scenarios (3-4 interconnected web applications per task) with rich interactions: drag-and-drop, file uploads, authentication flows, LLM-in-the-loop components
* Implement deterministic verifiers that evaluate agent behavior with zero ambiguity Customer delivery
* Work directly with engineering teams at leading AI labs to integrate RL Gym environments into their training and evaluation pipelines
* Translate customer specs into working environments, iterating rapidly on feedback
* Own the technical relationship: SLAs, API contracts, integration architecture
* Adapt environment delivery formats to cus tomer infrastructure (real-time API calls vs. offline batch, managed vs. raw artifacts)
* Build customer-facing UIs when needed (dashboards, environment configuration portals, monitoring interfaces) Rapid prototyping
* Take ambiguous problem descriptions and produce working prototypes within days, not weeks
* Validate new environment types, interaction patterns, and verifier approaches quickly
* Build internal tooling that accelerates scenario authoring and testing

About Alice:
Alice is a trust, safety, and security company built for the AI era. We safeguard the communicative technologies people use to create, collaborate, and interact- whether with each other or with machines. In a world where AI has fundamentally changed the nature of risk, Alice provides end-to-end coverage across the entire AI lifecycle. We support frontier model labs, enterprises, and UGC platforms with a comprehensive suite of solutions: from model hardening evaluations and pre-deployment red-teaming to runtime guardrails and ongoing drift detection. Alice is widely considered a global leader in online safety and AI security. We have some of the most forward-thinking and passionate minds in the world working to safeguard over 3 billion users across the largest AI and tech platforms. If you're creative and driven to secure the future of AI, we want to hear from you!
Requirements:
Mus
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
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תודה על שיתוף הפעולה
מודים לך שלקחת חלק בשיפור התוכן שלנו :)
חברה חסויה
Location: Ramat Gan
Job Type: Full Time
we are hiring a Software Engineer to help revolutionize the world of observability. Using cutting-edge AI-driven technology, we are redefining how organizations monitor, analyze, and optimize their systems-making observability more intelligent, efficient, and accessible than ever before. As we scale, we seek top talent to push the boundaries of innovation and shape the future of AI-powered observability. If you're passionate about solving complex challenges and building game-changing technology, join us in transforming how the world understands and interacts with data.



Responsibilities:

End-to-end development and ownership of products and features, from design to scalable and predictable production behavior

Solve diverse and complex problems in a high-scale, cloud-native environment

Collaborate with other engineers and product managers to improve product functionality, scalability, and performance

Design, develop, and maintain robust, secure, and efficient software solutions

Ensure high system reliability by implementing best practices in monitoring, observability, and automation

Review code, architecture, and data to identify and troubleshoot technical and performance issues

Work with AI/ML teams to integrate AI capabilities, including model monitoring, evaluation, and fine-tuning
Requirements:
Minimum of 4 years of experience in software development within a cloud environment
Strong proficiency in designing and developing scalable, distributed systems
Experience with Kubernetes (K8s), cloud infrastructure (AWS, GCP, or Azure), and cloud-native development practices
Solid understanding of performance optimization, troubleshooting, and functional/non-functional testing
Proficiency in Python / Go / Rust / Java / .net / Typescript / node.js
Experience with CI/CD pipelines, infrastructure as code (Terraform / Pulumi, Helm, ArgoCD) - advantage
Hands-on experience with AI/ML development, including monitoring ML models, evaluating performance
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
עדכון קורות החיים לפני שליחה
עדכון קורות החיים לפני שליחה
8787491
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דיווח על תוכן לא הולם או מפלה
מה השם שלך?
תיאור
שליחה
סגור
v נשלח
תודה על שיתוף הפעולה
מודים לך שלקחת חלק בשיפור התוכן שלנו :)
Location: Ramat Gan
Job Type: Full Time
We're looking for a Senior AI Engineer to design, build, and ship production-grade LLM agents that reason over workforce and skills data on top of Loomra's semantic layer. You won't just prototype - you'll own agent workflows end to end, from design through evaluation, deployment into the tools employees use daily (Teams, Slack, Copilot), and iteration in front of enterprise customers. You'll work alongside product, data, and platform engineers to turn powerful capabilities into reliable, safe, and fast product experiences.
If you've built agents that actually made it to production - and you care as much about evaluation, guardrails, and reliability as you do about capability - we want to talk to you.
Responsibilities
Design and build multi-agent systems and orchestration - intent routing, planning, tool use, and coordination across specialized agents.
Implement retrieval and RAG pipelines over structured and unstructured workforce data, grounded in our knowledge graph connecting people, jobs, and skills.
Integrate LLMs with tool/function calling and protocols such as MCP to give agents controlled access to HCM systems, business logic, and workflows.
Build evaluation harnesses, guardrails, and safety/bias checks, and work within the governance engine so agents behave reliably, respect customer policies, and produce a full audit trail.
Ship agents in a model-agnostic way across providers (Anthropic, Google, IBM watsonx) and deploy them into Teams, Slack, and Copilot.
Optimize agents for latency, cost, and reliability at enterprise scale.
Take agents from prototype to production - with monitoring, observability, and a fast iteration loop.
Partner closely with product, data, and platform teams to translate customer needs into agent capabilities.
Requirements:
5+ years building production software
Proven experience building and shipping LLM agents to production - not just demos or prototypes.
Hands-on with at least one agent orchestration framework (e.g. LangGraph, LangChain, AutoGen, CrewAI, Semantic Kernel, or similar).
Strong Python and solid software engineering fundamentals.
Prompt engineering paired with systematic, measurable evaluation of LLM outputs.
Experience with tool use / function calling and integrating LLMs with external systems.
Track record deploying, monitoring, and maintaining AI in production (cloud, CI/CD, observability).
Nice to Have
2+ years hands-on with LLMs / generative AI.
Practical experience with RAG, embeddings, and vector databases (e.g. pgvector, Pinecone, or similar)
Experience with MCP, agent memory, and planning/reasoning patterns.
Background in HR tech, people data, or skills ontologies.
Knowledge graph / graph ML experience (knowledge graphs, GNNs).
Responsible AI: bias evaluation, guardrails, and AI governance.
Experience working across multiple model providers (e.g. Anthropic, Google, IBM watsonx) rather than a single vendor.
This position is open to all candidates.
 
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30/08/2026
חברה חסויה
Location: Ramat Gan
Job Type: Full Time
As our QA Engineer, you'll build QA infrastructure that ensures our product meets the highest bar, and youll be the first voice advocating for quality at every stage of development.
About The Role
This is a hands-on, high-impact role. You'll work tightly with developers, product managers, and designers to catch bugs before they ship - and to build the processes and automation that prevent them from appearing in the first place.
You'll design and execute comprehensive test strategies across our platform's most critical workflows, from escalation rules and automation audit configurations to the AI agent behaviors that power our customers' support operations.
What You'll Bring
A quality-first mindset: you see QA not as a gate at the end of the pipeline, but as a discipline embedded in every phase of product development.
The ability to make sharp risk-based decisions - you know when a 2% repro-rate bug in a non-critical feature is a release note vs. a release blocker.
Experience establishing or maturing QA processes in teams that may not have had formal QA before.
Comfort navigating the tension between speed and quality - you can articulate trade-offs to stakeholders and push back on pressure to skip testing when the risk warrants it.
A collaborative, empathetic approach to working with developers - you build trust, not friction.
What You'll Do
Design, maintain, and execute comprehensive test suites - including functional, regression, integration, smoke, performance, and exploratory tests - across our company's AI platform.
Build and expand automated test coverage using Playwright and Typescript, integrated into our CI/CD pipeline.
Collaborate with developers throughout the SDLC: participate in sprint planning, review requirements for testability, join design reviews, and validate acceptance criteria before development begins.
Own the QA process for key product areas, including escalation configurations, automation audit rules (email patterns, subject lines, message keywords), and AI agent behavior customization.
Investigate, document, and triage bugs with detailed, reproducible reports - and advocate for the right balance between blocking a release and shipping with known issues.
Debug web application issues using browser DevTools, network analysis tools, and API testing utilities.
Champion a testing culture across the engineering organization - quality is everyone's responsibility, and you help make that real through process, tooling, and collaboration.
Proactively identify subtle bug classes - race conditions, off-by-one errors, timezone issues, Unicode handling, caching inconsistencies - and build test strategies specifically targeting them.
Evaluate and recommend improvements to QA tooling, processes, and infrastructure as the team and product scale.
Requirements:
4+ years of QA experience in a SaaS or web application environment, with a strong understanding of the SDLC and where QA fits within it.
Hands-on experience designing test plans and test suites - from smoke tests and regression suites to edge-case and exploratory testing.
Proficiency with test automation tools such as Selenium, Cypress, Playwright, or similar frameworks.
Experience with test management platforms like TestRail, Zephyr, Xray, or qTest.
Comfortable using browser developer tools, network inspectors (Wireshark, Fiddler, Charles Proxy), and API testing tools (Postman, REST-assured).
Solid understanding of web technologies: HTTP/HTTPS, REST APIs, WebSockets, HTML/CSS, and JavaScript basics.
Proficient with modern AI-tool based software development (e.g Cursor, Claude Code).
Familiar with CI/CD pipelines and how automated tests integrate into build and deployment workflows.
Strong analytical mindset - you think in edge cases, race conditions, and boundary values, not just happy paths.
Excellent written and verbal communication skills; you can write a clear, reproducible bug report that developers love you for.
This position is open to all candidates.
 
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6 ימים
חברה חסויה
Location: Ramat Gan
Job Type: Full Time
We are seeking a Senior AI Researcher to lead post-training evaluation, red-teaming, and reinforcement learning (RL) gym audits on open-weight models. The ideal candidate will establish rigorous benchmarking methodologies, evaluate large language models (LLMs) against complex threats like Indirect Prompt Injections (IPI), and construct post-training evaluation pipelines that accurately measure realistic frontier-level security capabilities. Key Responsibilities RL Post-Training & Benchmarking: Execute post-training runs (e.g. GRPO) using mainstream open-weight generalist models against security-focused RL environments, targeting threat vectors like Indirect Prompt Injection (IPI). Reward Diagnostics & Trace Analysis - Analyze live loss curves and rollout traces to identify reward hacking, lazy policy convergence, and flawed or over/under-specified verifiers. Task & Environment Auditing: Review tasks and multi-turn environments (including tool use, web navigation, and computer use) for realism, threat model accuracy, data distribution, and dataset balance. Performance Reporting (Gym Cards): Generate comprehensive evaluation cards detailing hill-climbing performance uplift across checkpoints, failure modes, tokens/turns per rollout, and task-level success rates. Integration & Orchestration: Integrate dockerized environments (e.g., Harbor format) into internal training frameworks, optimizing reset/statefulness semantics, concurrency, and throughput ceilings.
About us:
we are a trust, safety, and security company built for the AI era. We safeguard the communicative technologies people use to create, collaborate, and interact- whether with each other or with machines. In a world where AI has fundamentally changed the nature of risk, our company provides end-to-end coverage across the entire AI lifecycle. We support frontier model labs, enterprises, and UGC platforms with a comprehensive suite of solutions: from model hardening evaluations and pre-deployment red-teaming to runtime guardrails and ongoing drift detection. we are widely considered a global leader in online safety and AI security. We have some of the most forward-thinking and passionate minds in the world working to safeguard over 3 billion users across the largest AI and tech platforms. If you're creative and driven to secure the future of AI, we want to hear from you!
Requirements:
Required Qualifications Technical Background: M.S. or Ph.D. in data Science, Machine Learning, Computer Science, or equivalent practical experience in deep learning. RL & Post-Training Expertise: Strong hands-on experience training large-scale models using RL algorithms (e.g. GRPO, PPO) on open-weight architectures. AI Security Expertise: Solid understanding of LLM vulnerabilities, red-teaming methodologies, and defensive alignment against IPI attacks. Infrastructure Skills: Proficiency in PyTorch, Docker containerization, and distributed training architectures. Diagnostic Skills: Ability to analyze agent rollout traces, craft deterministic rubrics/verifiers, and debug complex reward shaping flaws. Preferred Qualifications
* Prior experience working with standard RL gym formats, such as Harbor.
* Experience evaluating complex agentic workflows in tool-use or web-browser environments.
* Familiarity with evaluating open-weight models similar to Llama or Mistral against adversarial workloads.
This position is open to all candidates.
 
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