דרושים » AI » Senior/Principal RAN Digital Twin & AI Simulation Engineer

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לפני 1 שעות
Location: Kefar Sava
Job Type: Full Time
We are looking for a hands-on wireless systems engineer to lead the development of a multi-RAT digital twin for our Open RAN solution. The digital twin will execute production RAN software-beginning with scheduler and MAC behavior-in a closed loop with PHY, channel, UE, traffic, and network models. It will allow engineering teams to design, evaluate, and compare features for LTE, 5G NR, and 2G without requiring a dedicated physical radio setup for every development cycle.
This is a senior individual-contributor role at the intersection of wireless systems, simulation, production software, and AI/ML. You will evolve an existing LTE end-to-end simulator into a scalable engineering platform for feature development, regression testing, performance optimization, and evidence-based pre-validation. Initial use cases include MAC scheduler and link-adaptation improvements, power control, mobility and interference scenarios, and neural-network-assisted channel estimation.
The successful candidate will understand that a useful digital twin must be both fast and trustworthy. You will define multiple fidelity levels-from rapid surrogate models to full PHY processing-and establish repeatable methods for calibrating the twin against lab or field reference data. The goal is to reduce dependence on continuous lab access while maintaining clear, measurable confidence in the simulation results.
What you will do:
Own the technical architecture and roadmap for a modular, multi-RAT RAN digital twin
covering LTE, 5G NR.
Integrate production MAC and scheduler software into deterministic, per-TTI/slot closed-loop simulations
through stable and maintainable interfaces.
Model the interaction among scheduler decisions, PHY processing, propagation channels, UE behavior, traffic, interference, mobility, HARQ, link adaptation, and power control.
Extend the current LTE simulation capability and define reusable abstractions that support additional 5G NR and
2G stacks without duplicating the platform.
Design a fidelity ladder that combines high-fidelity PHY execution with faster calibrated models or lookup/surrogate backends, selecting the least expensive model that is valid for each engineering question.
Develop and evaluate AI/ML-based RAN capabilities, including neural channel estimation, learned link adaptation or scheduling policies, and ML-based PHY or channel surrogates.
Build representative datasets and experiment pipelines; establish conventional algorithmic baselines;
Requirements:
BSc or MSc in Electrical Engineering, Computer Engineering, Computer Science, or a related field, with substantial relevant industry experience.
Typically, 7+ years of hands-on experience in communication systems, system development, integration, or simulation. Experience with RAN, modem/PHY, or wireless systems is an advantage.
Demonstrated experience building or validating link-level, system-level, or hardware-in-the-loop simulations and explaining where a model is-and is not-valid.
Strong programming skills in C or C++ and Python, including the ability to integrate production native code with simulation and analysis tooling.
Practical experience with scientific computing and data analysis using tools such as NumPy, SciPy, pandas, and visualization frameworks.
Sound experimental and statistical judgment: reproducibility, baselines, error analysis, uncertainty, calibration, controlled comparisons, and avoidance of data leakage or curve fitting.
Experience working in Linux development environments with Git, automated testing, containers, and CI/CD.
Ability to lead a technically ambiguous initiative, make architecture decisions, and communicate
clearly across research, product, development, and validation teams.
This position is open to all candidates.
 
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סוג משרה: משרה מלאה ועבודה היברידית
תכנון, כתיבה, בדיקה ואופטימיזציה של Prompts ו- system Instructions עבור עוזרים ארגוניים וסוכני AI.
תכנון וניהול Context, זיכרון שיחה, מבנה השיחה והמידע המועבר למודל בכל שלב.
בניית ושיפור תהליכי RAG, כולל Chunking, Metadata, Embeddings, Retrieval ו-Reranking.
עבודה עם מאגרי Vector DB וניהול מקורות ידע ארגוניים לצורך שליפה מדויקת ורלוונטית.
איתור כשלים בתשובות המודלים, ניתוח Root Cause ושיפור Prompt, Context, Retrieval או מבנה ה-Agent בהתאם לממצאים.
עבודה משותפת עם ראש צוות ה-AI, מפתחים, אבטחת מידע ויחידות עסקיות לצורך תרגום צרכים עסקיים להתנהגות נכונה של פתרונות AI.
פיתוח Hands-on של רכיבי backend ושירותי API עבור פתרונות AI, כולל חיבור למודלים, מאגרי מידע ושירותים ארגוניים.
פיתוח כלי UI וממשקים פנימיים לצורך בדיקה, תפעול, ניהול ידע, Evaluation וניתוח ביצועי פתרונות AI.
בניית POC ויישומים מקצה לקצה בשיתוף ראש הצוות והמפתחים, משלב אב-טיפוס ועד העברה לפיתוח Production.
תיעוד סטנדרטיO
דרישות:
ניסיון מעשי בעבודה עם LLMs וב-Prompt Engineering.
ניסיון בניהול Context, תכנון תהליכי שיחה ופתרונות מבוססי ידע ארגוני.
היכרות מעשית עם RAG, Embeddings ו-Vector DB.
ניסיון בהגדרת תהליכי Evaluation ובמדידה ושיפור של איכות תשובות מודלים.
ניסיון מעשי ב- Python ובאינטגרציות API.
ניסיון בפיתוח Full Stack, עם דגש על backend ב- Python ופיתוח שירותי REST/API.
ניסיון בפיתוח Web בצד ה- frontend באמצעות JavaScript /TypeScript ואחת מהטכנולוגיות המובילות כגון React - יתרון משמעותי.
ניסיון בעבודה עם Git, תהליכי CI/CD, Docker וסביבות פיתוח מודרניות - יתרון.
יכולת לתכנן ולממש פתרון מקצה לקצה: ממשק משתמש, backend, בסיס נתונים ואינטגרציה למודל או Agent.
חשיבה אנליטית גבוהה, ירידה לפרטים ויכולת ניסוי שיטתית.
הבנה עסקית ויכולת לתרגם צורך עסקי להנחיות, Context ומדדי הצלחה.
יכולת עבודה בצוות ותקשורת טובה עם גורמים טכנולוגיים ועסקיים.
סקרנות מקצועית, למידה עצמית גבוהה ויכולת להתעדכן במהירות בעולם ה-Generative AI. המשרה מיועדת לנשים ולגברים כאחד.
 
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לפני 1 שעות
Location: Kefar Sava
Job Type: Full Time and Hybrid work
We are looking for a hands-on Senior Applied AI Evaluation Engineer to improve how our RAN R&D organization analyzes engineering tickets, supports Root-Cause Analysis, recommends ownership, and learns from resolved cases.
You will build rigorous evaluation datasets, establish meaningful baselines, compare internal and approved external tools, analyze failure modes, and prototype improvements across retrieval, classification, prompting, agent workflows, and model selection.
This role is focused on measurable, evidence-based improvement rather than AI demonstrations. You will assess whether AI-generated conclusions are accurate, grounded in evidence, appropriately calibrated, and useful to engineering teams.
As a secondary area of focus, you will analyze engineering workflows at case and team level to identify bottlenecks, handoffs, dependencies, and opportunities for process improvement.
What you will do:
Define high-value RAN ticket-intelligence use cases, acceptance criteria, evaluation metrics, and quality guardrails.
Build and maintain representative, versioned evaluation datasets using resolved tickets, Root-Cause Analysis, logs, test evidence, code changes, reviews, reassignment history, and outcomes.
Establish current-tool and non-AI baselines before evaluating new LLM, RAG, search, or agent-based approaches.
Evaluate approved internal, commercial, local, and open-source solutions using secure and reproducible data-handling processes.
Measure retrieval quality, groundedness, diagnosis accuracy, citation support, routing recommendations, calibration, abstention, latency, cost, and human effort.
Design held-out, time-based, edge, and adversarial test cases while preventing data leakage and future-outcome contamination.
Analyze failures and turn incorrect conclusions, misrouting, unsupported claims, and missed evidence into prioritized improvements.
Prototype improvements in search, metadata, context construction, prompting, reranking, classification, agent workflows, and model selection.
Develop reusable evaluation pipelines, tools, services, APIs, dashboards, or documented workflows.
Work closely with AI, RAN, QA, System Integration, Release, Field, data, and engineering teams to review results and support evidence-based decisions.
Requirements:
What you should have:
BSc or MSc in Computer Science, Data Science, Machine Learning, Statistics, Electrical Engineering, or a related field, or equivalent practical experience.
5+ years of hands-on experience in applied machine learning, data science, search, natural-language processing, analytics engineering, or AI-enabled software systems.
Recent experience evaluating LLM, RAG, search, or agent systems using representative datasets, task-specific metrics, human review, failure analysis, and regression testing.
Strong Python and SQL skills, with experience building maintainable data pipelines, experiment workflows, services, or analytical tools.
Practical experience with several areas such as information retrieval, embeddings, hybrid search, reranking, classification, structured outputs, tool calling, or common LLM failure modes.
Strong statistical judgment, including sampling, leakage prevention, uncertainty, calibration, precision and recall, temporal drift, and controlled comparison of competing approaches.
Ability to work with semi-structured engineering data from issue-tracking systems, source control, code reviews, continuous integration, logs, dashboards, and test systems.
Clear communication skills and the ability to explain results, limitations, and tradeoffs to technical and business stakeholders.
Preferred qualifications:
Knowledge of LTE, 5G NR, Open RAN, telecom-support workflows, or demonstrated ability to learn a technically complex domain through close collaboration with subject-matter experts.
Experience with enterprise search, RAG evaluation, knowledge graphs, process mining, anomaly detection, or graph-based analysis.
This position is open to all candidates.
 
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לפני 1 שעות
Location: Kefar Sava
Job Type: Full Time and Hybrid work
We are looking for a hands-on technical leader to build and operate a secure local large-language-model platform for the company. The platform will allow engineering and business teams to use generative AI with proprietary source code, product documentation, technical standards, test artifacts, support knowledge, and other approved internal data while keeping sensitive information within company-controlled environments.
This is a senior individual-contributor role spanning applied LLM engineering, platform architecture, search and data pipelines, security, and production operations. You will turn promising prototypes into a dependable internal capability: selecting and optimizing open-weight models, building permission-aware retrieval, creating reusable APIs and tools, integrating with existing engineering workflows, and establishing objective ways to measure quality, safety, latency, capacity, and business value.
The successful candidate will understand that a useful enterprise LLM is more than a model and a chat interface. It requires trustworthy source grounding, strong access controls, repeatable evaluation, careful tool permissions, observable production services, and an operating model that keeps data, indexes, prompts, models, and dependencies current. You will make pragmatic build-versus-buy decisions and choose the simplest approach-search, retrieval-augmented generation (RAG), prompting, workflow automation, or model adaptation-that meets each use case.
Initial use cases may include engineering knowledge discovery, source-code understanding, troubleshooting assistance, technical-document Q&A and summarization, test and log analysis, and drafting structured engineering artifacts. The platform should be extensible to additional approved use cases as needs and model capabilities evolve.
What you will do:
Own the architecture and technical roadmap for a secure, reliable, and maintainable local LLM platform deployed in our controlled infrastructure.
Partner with engineering, product, support, IT, information security, legal, and domain experts to prioritize high-value use cases and translate them into measurable product and platform requirements.
Requirements:
BSc or MSc in Computer Science, Computer Engineering, Electrical Engineering, Data Science, or a related field, or equivalent practical experience.
Typically 7+ years of hands-on experience in production software, ML platform, search, data, or infrastructure engineering, including meaningful recent experience shipping LLM-powered systems; exceptional candidates with equivalent depth are welcome.
Strong Python engineering skills and experience designing maintainable APIs, services, libraries, and data pipelines. Experience with Go, Java, or C/C++ is an advantage.
Strong understanding of transformer-based language models and production inference, including tokenization, context management, batching, KV caching, parallelism, quantization, structured output, tool calling, and common model failure modes.
Demonstrated experience building production RAG or enterprise-search systems using embeddings, vector and/or lexical search, metadata filtering, reranking, source attribution, and systematic retrieval evaluation.
Experience defining task-specific LLM evaluations using representative datasets, strong baselines, domain-expert review, automated metrics, human feedback, error analysis, and regression thresholds.
Experience deploying and operating containerized services on Linux using Docker and Kubernetes or an equivalent orchestration environment.
Practical experience with GPU-backed model serving, performance profiling, capacity planning, monitoring, and reliability engineering.
Strong knowledge of distributed-system fundamentals, authentication and authorization, API security, secrets handling, encryption, auditability, and data lifecycle controls.
This position is open to all candidates.
 
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לפני 1 שעות
חברה חסויה
Location: Kefar Sava
Job Type: Full Time and Hybrid work
We are looking for an experienced AI Engineering Manager to lead our AI team within R&D and drive the development and integration of AI capabilities across our RAN product portfolio.
The team works on production-focused AI solutions, including agentic AI for network operations, AI-driven optimization and automation, technical assistants, and automated root cause analysis. In this role, you will combine technical leadership, people management, and execution ownership to take AI initiatives from concept through productization and measurable impact.
You will define the technical direction and roadmap, lead and grow a multidisciplinary team of AI/ML, software and domain engineers, and work closely with R&D, Product, Systems and global teams to bring scalable AI capabilities into our products.
What you will do:
Lead the AI team and own its technical direction, roadmap and execution.
Drive AI/ML initiatives from concept and prototyping through production deployment and ongoing optimization.
Define clear success metrics and ensure AI solutions deliver measurable product and business impact.
Lead architecture and technical decision-making around AI models, platforms, tools and data.
Build and grow a strong multidisciplinary team, including recruitment, mentoring, performance management and career development.
Establish strong engineering practices around evaluation, scalability, reliability, monitoring and model lifecycle management.
Work closely with Product Management, Systems Engineering and R&D teams across Israel, India and the US.
Partner with RAN and domain experts to identify opportunities where AI can improve network performance, automation and operational efficiency.
Support customer-facing discussions, trials and PoCs where relevant.
Requirements:
What you should have:
3+ years of experience leading engineering teams, with responsibility for people management, hiring and delivery.
8+ years of experience in software, systems or AI/ML engineering, with a strong technical background.
Proven experience delivering ML or LLM-based solutions into production, with measurable impact and ownership from development through deployment.
Strong understanding of modern AI technologies and architectures, including LLMs, RAG, AI agents, tool calling, evaluation methodologies and MLOps/LLMOps.
Hands-on familiarity with relevant technologies such as Python, PyTorch, vector databases and modern AI development frameworks.
Strong ability to evaluate AI opportunities, define technical approaches and translate them into practical, scalable solutions.
Experience building and developing high-performing technical teams.
Experience working in a global, cross-functional R&D environment.
Fluent English, written and spoken.
What is nice to have:
Experience in telecom, RAN, wireless communications, real-time systems or another complex technology domain.
Knowledge of 4G/5G technologies and network architecture.
Experience applying ML/AI to network, operational or time-series data.
Experience developing AI assistants, agentic systems or intelligent automation solutions.
Experience delivering products to enterprise or telecom customers with high requirements for reliability and performance.
Education:
B.Sc. or M.Sc. in Computer Science, Electrical Engineering or a related field.
This position is open to all candidates.
 
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לפני 1 שעות
חברה חסויה
Location: Kefar Sava
Job Type: Full Time
We're looking for a highly motivated and experienced Sr. Principal DevOps Engineer to own the software delivery pipeline for our next-generation products - from commit to release. This is a build-and-release-centric role: you'll design the CI/CD systems the entire engineering organization depends on, drive build performance and reliability, and lead the integration of modern AI tools into the development lifecycle to improve code quality and delivery speed.
What you'll do:
Own the architecture, implementation, and day-to-day reliability of our CI/CD pipelines end to end - build, test, package, publish, deploy
Cut build and test cycle times through parallelization, caching, incremental builds, and smarter agent/executor utilization
Build and maintain the build infrastructure itself: build agents, containerized build environments, artifact repositories, and dependency management
Integrate automated testing, code quality gates, static analysis, and security scanning directly into the pipeline, with clear feedback to developers
Define and enforce branching, versioning, and release strategies across teams
Treat pipelines as code - version-controlled, reviewed, reusable, and templated as shared libraries rather than copy-pasted per project
Monitor pipeline health and build reliability; hunt down flaky tests and non-deterministic builds and drive them out
Partner directly with software engineers as the internal service owner of CI - unblock failing builds, onboard new services, and make the paved path the easy path
Lead AI initiatives within the engineering group: integrate AI-driven tooling into the pipeline and the broader SDLC for code review, test generation, failure triage, and developer productivity
Requirements:
10+ years in DevOps, Build/Release Engineering, or a similar role, with CI/CD as a primary responsibility
Deep hands-on expertise with CI/CD platforms (Jenkins strongly preferred - including pipeline-as-code, shared libraries, etc)
Strong Git skills, including branching strategies, merge/rebase workflows, monorepo or multi-repo tradeoffs, and repository administration
Proficiency with Atlassian tooling - Bitbucket, Jira, Confluence - and with automating across them
Experience with artifact and dependency management (Artifactory/JFrog, Nexus, or similar), including repository layout, retention, and promotion policies
Strong scripting and automation skills in Groovy, Bash, Python, or Go
Proficiency with containers and orchestration - Docker, Kubernetes, Helm - particularly for build environments and deployment targets
Experience with test automation frameworks and integrating them into CI, plus code quality tooling (linters, static analysis, coverage, SonarQube or similar)
Working knowledge of cloud platforms (AWS, GCP, or Azure) and Infrastructure as Code (Terraform, CloudFormation) sufficient to provision and maintain delivery infrastructure
Solid Linux system administration, networking, and security fundamentals
Experience with monitoring and observability tooling (Prometheus, Grafana, ELK), especially applied to pipeline and build metrics
Familiarity with AI-assisted development tools such as Claude, GitHub Copilot, or Cursor, and an interest in bringing them into the delivery workflow
Excellent problem-solving and communication skills, with a service-oriented attitude toward the engineering teams you support
Education:
Bachelors degree in Computer science, Engineering, or a related field.
This position is open to all candidates.
 
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חברה חסויה
Location: Kefar Sava
Job Type: Full Time
The Director of AI Enablement is both a builder and a transformation leader, someone who can identify opportunities, design and implement AI solutions, and drive adoption across the organization to create measurable business value.

Reporting directly to the CEO, this is a highly visible, hands-on leadership role at the intersection of business transformation, technology, and organizational change.

The successful candidate will lead AI roadmap, build practical AI solutions, drive adoption across functions, and help transform how work is performed throughout the organization.

What Will You Do?

Define and execute AI roadmap.

Identify, prioritize, and implement high-impact AI opportunities across the business.

Partner with business, operational, engineering, and corporate functions to understand workflows, pain -points and improvements opportunities.

Translate business challenges into practical AI use cases and measurable outcomes.

Design, build, pilot, and scale AI-powered solutions, including AI agents, copilots, automations, knowledge assistants, and business applications.

Partner with IT, Engineering, Infrastructure, and Security teams to ensure scalable, secure, and sustainable solutions.

Lead the transformation, not just the technology; drive AI adoption across departments and help leaders redesign processes and ways of working to maximize AI value.

Work hand-in-hand with HR and business leaders to lead the organizational transformation required to successfully adopt AI, build internal capabilities, and embed new ways of working across the company.

Establish and lead the core pillars of the AI Enablement program: Adoption, Infrastructure, and Solution Development.

Build and lead a community of AI Builders and Leaders across the organization.

Establish AI governance, Responsible AI practices, and security standards.

Measure and communicate business impact through adoption, productivity gains, efficiency improvements, time savings, and ROI.

Success is measured not only by building AI solutions, but by driving meaningful improvements in productivity, efficiency, quality, decision-making, and business performance across the organization.
Requirements:
4+ years of leadership experience in AI, technology, engineering, digital transformation, or automation initiatives, with a proven track record of driving transformation beyond pilot programs.

Proven experience implementing AI solutions in real business environments.

Strong ability to bridge business needs with technical execution.

Hands-on experience building AI agents, workflows, automations, and AI-powered solutions.

Proven track record of taking AI or Generative AI solutions from proof-of-concept to production with measurable business impact.

Strong understanding of Generative AI, LLMs, AI Agents, workflow automation, cloud-based AI technologies, enterprise data environments, and modern AI development frameworks.

Technically credible with IT, Infrastructure, Security, and Engineering teams.

Experience implementing AI governance and Responsible AI practices in regulated or security-sensitive environments.

Strong understanding of data protection, intellectual property management, cybersecurity, and export-control considerations.

Strong cross-functional leadership experience, driving adoption and change across engineering, operations, and business functions.

Strong commercial judgment and the ability to prioritize initiatives based on business impact and ROI.

Fluent in Hebrew and English. Eligible to operate in a defense and export-controlled environment.
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
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תודה על שיתוף הפעולה
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Location: Kefar Sava
Job Type: Full Time
We are looking for a hands-on Computer Vision & AI Algorithm Engineer to develop advanced imaging algorithms for a cutting-edge medical device. The role spans the full spectrum of algorithm development - from creating new solutions to improving, maintaining, validating, and integrating them into the product. The ideal candidate is curious, pragmatic, and comfortable moving between deep learning, classical computer vision, data analysis, debugging, validation, and product integration as needed. They measure success by seeing algorithms work reliably in a real-world product and enjoy collaborating across disciplines to solve the challenges that move the product forward.

Responsibilities may include the following and other duties may be assigned:
Design, develop, maintain, and continuously improve AI, computer vision and image processing algorithms for a medical imaging product.
Own the full lifecycle of algorithm development, from concept and data definition through implementation, validation, product integration, and long-term maintenance.
Use both classical computer vision methods and machine/deep learning methods to come up with solutions for various problems in the domains of image classification, segmentation and 3D modeling.
Collaborate with SW developers, biomedical engineers, product specialists and other algorithms developers to refine and enhance existing applications.
Maintain and improve algorithm robustness, performance and reliability in production environments.
Identify opportunities for innovation and design novel algorithms to address complex technical challenges.
Stay at the forefront of relevant academic research by reviewing the latest papers and evaluating their potential impact on the companys algorithmic stack.
Requirements:
Required Knowledge and Experience:
M.Sc. in computer science, electrical engineering, physics, mathematics, or related fields (excellent B.Sc. graduates will be considered as well).
Experience in development and implementation of AI, computer vision and image processing algorithms.
Strong understanding of data quality, dataset design, model evaluation, and performance analysis.
Self-driven with the ability to independently lead technical projects from concept through deployment.
Experience with deep learning frameworks such as PyTorch or TensorFlow - an advantage.
Experience with MATLAB for algorithm development and analysis - an advantage.


Physical Job Requirements
The above statements are intended to describe the general nature and level of work being performed by employees assigned to this position, but they are not an exhaustive list of all the required responsibilities and skills of this position. 
This position is open to all candidates.
 
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