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חברה חסויה
Location: Ra'anana
Job Type: Full Time
In this role, you will be a key contributor to the design and implementation of our companys AI Graph Compiler software stack for Neural Processing Units (NPUs). You will take part in defining software architecture, implementing performance-critical components, and enabling efficient execution of advanced neural networks under tight power, memory, and latency constraints.
You will work closely with hardware and system architects, software and hardware engineers, influencing both software and hardware decisions. You will design and implement major parts of our company NPU embedded solutions, actively promoting our company AI capabilities to the customers.
What will you do:
Own and design key components of the AI Graph Compiler software stack for NPU-based systems.
Optimize inference performance (latency, throughput, memory footprint, power) for edge deployments.
Collaborate on HW-SW co-design, influencing NPU architecture.
Support IP evaluations and silicon bring-up, root-cause complex HW/SW issues, and influence development methodologies.
Mentor junior engineers and contribute to technical best practices.
Requirements:
3 years of experience in building high-quality embedded software using C/C++.
BSc/MSc in Computer Science, Electrical Engineering, or equivalent.
Proven experience developing and maintaining complex embedded systems, including multi-component software stacks, tight HW/SW integration, and system-level debugging.
Experience in designing and implementing software based on product & hardware specifications.
Experience working under tight memory, power, and real-time constraints.
Excellent interpersonal and communication skills, with a proven ability to work well in a team.
Advantages:
Experience in data-flow optimization using profiling tools.
Interaction with AI compilers / graph optimizers.
Familiarity with fixed-point / quantized inference is a strong plus.
Familiarity with neural network open-source frameworks such as PyTorch and TensorFlow.
Proficiency in Python coding.
This position is open to all candidates.
 
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משרה בלעדית
1 ימים
דרושים בריקרוטיקס בע"מ
Job Type: More than one
AI Engineer (Research-Facing)
We are building an AI-driven investment and technology intelligence capability, focused on evaluating frontier AI methods and turning them into real business impact.
This role sits at the intersection of research and engineering. You will work directly with AI researchers and take ownership of turning research ideas into robust, production-grade systems.
This is a hands-on individual contributor role (not management). If you are a strong builder who enjoys working close to research and cares about turning ideas into real systems - wed like to hear from you.
:What youll do
Work side-by-side with AI researchers in fast evaluation cycles
Turn research prototypes into robust systems
Build infrastructure, pipelines, and tooling for experiments and evaluation
Own implementation end-to-end
Requirements:
:Requirements (please read carefully)
~4-6 years of hands-on software engineering experience
Strong Python skills
Experience building real systems end-to-end (not just scripts or notebooks)
Hands-on experience with Machine Learning (beyond coursework)
B.Sc. in Computer Science (top university preferred)
Fluent in both Hebrew and English
Ability to work 4 days a week from the office in Tel Aviv
Good vibe - a must. We work closely, think together, and care about how we work as much as what we build.
:Strong plus
Background in a leading Israeli military technology unit (e.g. 8200, 81, Talpiot)
Direct experience as an AI / ML Engineer
Open-source contributions or independent technical projects
Experience at a top AI lab or research program (e.g. OpenAI, DeepMind, Meta AI)
Experience working closely with researchers
This position is open to all candidates.
 
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דרושים בJobs.ai
סוג משרה: משרה מלאה
מה תעשו אצלנו?
פיתוח תוכנה ולוגיקה למערכות משובצות (STM32 ומערכות MCU נוספות).
כתיבת RTL ב-VHDL/Verilog ופיתוח בסביבות Vivado ו-Quartus.
פיתוח דרייברים ו-Low Level עם פרוטוקולים מגוונים (SPI, I2C, CAN, Ethernet ועוד). אינטגרציה מלאה מול חומרה ופתרון בעיות (Troubleshooting) בשטח.
דרישות:
מה אנחנו מחפשים?
תואר ראשון בהנדסת חשמל/מחשבים/אלקטרוניקה.
2-5 שנות ניסיון בפיתוח Embedded בשפות C / C ++.
"ידיים טכניות": הבנה בחומרה, קריאת שרטוטים ועבודה עם צב"ד (Logic Analyzer, סקופ).
אנגלית טכנית ברמה טובה. המשרה מיועדת לנשים ולגברים כאחד.
 
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הגשת מועמדות
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חברה חסויה
Location: Ra'anana
Job Type: Full Time
In this role, you will be shaping the future of our companys AI software stack for Neural Processing Units (NPUs). You will lead software architecture, define performance-critical components, and enable efficient execution of advanced neural networks under tight power, memory, and latency constraints.
You will work closely with hardware and system architects, software and hardware engineers, influencing both software and hardware decisions. You will design and implement major parts of our company NPU embedded solutions, actively promoting our company AI capabilities to the customers.
We are seeking a high-impact motivated Software Architect to join our team and help shape the future of our advanced neural network AI Software Toolchain over our companys AI computing processors.
Responsibilities
Lead Software Architecture specification and supervise design for the most advanced Software Toolchain handling state-of-the-art Neural Processing Unit operation.
Collaborate proactively with Product, Architecture, VLSI and Software teams to promote software leadership over various markets and compute SoCs.
Explore and translate state-of-the-art neural network and AI applications requirements into software architecture flows, encompassing hardware, software, tools and other components.
Evaluate architecture proposals, internal and external IP features and provide influential and inspirational leadership across hardware and software to align all parties to a common vision of architecture & technology development.
Represent our company with high technical credibility in customer meetings, appropriately incorporating feedback.
Boost velocity of development teams by providing technical guidance and by constantly looking ahead to anticipate and resolve future challenges.
Conduct experiments, invent and drive development of supporting tools such as simulators, models, profilers, and other methods as required.
Engage with engineering leadership and product planning stakeholders to develop technology roadmap.
Requirements:
B.Sc in Engineering, Computer Science, or related technical field.
5+ years of experience as SW Architect.
8+ years of experience as SW developer.
Proficiency in Python, C++.
Proven track record in Software Architecture development, maintenance and improvement over embedded processors in AI and vision domains.
Excellent communication skills, both verbally and in writing. Collaborative and influential across organizations.
Proven ability to advance initiatives effectively in ambiguous and dynamic environments.
Ability to work and operate in a highly dynamic environment.
Advantages:
Experience in implementing embedded SW over SoCs /DSPs/NPUs.
Experience in Linux Kernel and drivers development.
Familiarity with runtime frameworks such as ExecuTorch, MLIR iree, Onnx runtime.
This position is open to all candidates.
 
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Location: Ra'anana
Job Type: Full Time
As the AI Software SDK Senior Team Leader, you will manage the companys NPU AI software stack end to end, a complex, multi-layered system spanning the Host (SDK, runtime, APIs, and UMD/KMD drivers) and the NPU IP (embedded firmware). Built on the newest AI compiler and runtime AI frameworks, this stack turns the most demanding neural networks into high-performance execution on our company NPUs. You will build and lead a multi-site global organization, plus sub-contractor teams abroad, including a dedicated automation and release team responsible for a fully automated CI and release process.
Key Responsibilities:
Build and lead the AI Software SDK development group , in Israel and other global locations plus sub-contractor teams abroad.
Own the NPU AI software stack across Host and IP, Host-side SDK, runtime, APIs, and UMD/KMD drivers (Linux, Android), and IP-side firmware, built on modern AI compiler frameworks (TVM, MLIR, IREE).
Deliver high quality, at performance, and on-time AI SW SDK product, working across functions and directly with customers.
Lead the automation and release team to deliver a robust, fully automated CI and release process.
Recruit, mentor, and grow the organization, including its team leaders.
Requirements:
B.Sc. in Electrical Engineering, Computer Science, or a related field
7+ years in software management, including managing team leaders or multiple teams
10+ years of hands-on software engineering with strong C/C++; deep embedded and low-level experience (firmware, drivers, RTOS) is a must
Solid grasp of driver and system-level software (Linux UMD/KMD, Android) and a track record of delivering complex software stacks and SDKs across Host and IP, including automated CI/CD and release processes
Experience managing geographically distributed teams and sub-contractors, and working directly with customers
Strong leadership, communication, problem-solving, and English skills, with the ability to drive execution in a fast-paced environment
Advantages
Experience with NPU, AI accelerator, or DSP software stacks
Experience with modern AI compiler/runtime frameworks (TVM, MLIR, IREE) and ML frameworks (TensorFlow, PyTorch, ONNX, TFLite)
Driver and Android HAL bring-up for hardware accelerators or custom silicon
M.Sc. in Electrical Engineering, Computer Science, or a related field.
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
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18/06/2026
Job Type: Full Time
We're looking for a Senior AI Infrastructure Engineer to join a group that specializes in Security and Networking, and specifically ML/AI, MLOps, and agentic AI development. As a Senior AI Infrastructure Engineer, youll build and maintain the infrastructure, tools and processes necessary to support the AI lifecycle in a production environment. You will collaborate closely with data scientists, software engineers, and security architects to ensure smooth development, deployment, evaluation, and optimization of AI pipelines, models, and agents. This role requires a balance of high-level engineering rigor and a collaborative spirit; youll be a technical anchor and a supportive peer for teams across the organization.



What youll be doing:

Architecting, developing and optimizing scalable infrastructure for deploying security and networking AI models and agents in production.

Managing ML/agentic workflows to ensure performance, high availability, resource efficiency, and cost-effectiveness.

Designing and implementing pipelines and frameworks for AI training, inference, and experimentation.

Partnering with data scientists and security architects to operationalize AI agents, including packaging and integration with existing systems. This includes contributing to and reviewing code, design documents, and test plans.

Partnering with DevOps teams to integrate pipelines and workflows into CI/CD processes, ensuring reliable deployments and rollbacks.

Building proactive monitoring systems to identify issues in quality and infrastructure before they impact production.

Implementing access controls, authentication mechanisms, and encryption standards to keep our AI models and data secure.

Documenting guidelines and leading knowledge-sharing sessions to elevate the teams collective development expertise.
Requirements:
What we need to see:

BSc/MSc in CS/CE or related field (or equivalent experience).

At least 8 years of experience in ML engineering with a track record of deploying LLMs and agents to production at scale (including distributed environments).

Proficiency in Python and/or C++, with a deep understanding of ML/AI frameworks.

Hands-on experience with microservices, container orchestration, and cloud platforms for large-scale training and inference workloads.

Knowledge of ML training and inference optimization techniques.

Understanding of build infrastructure and CI/CD tools and practices (e.g. GitLab, GitHub Actions, Jenkins)

Experience with teaching and mentoring.

You are a proactive owner who takes pride in your work but remains humble and approachable. You believe that "how" we build is just as important as "what" we build.

Excellent collaboration skills, with the ability to explain complex infra concepts to non-technical stakeholders clearly and kindly.



Ways to stand out from the crowd:

Experience deploying and optimizing generative models and multi-agent systems for performance.

Deep systems knowledge (Linux internals, network protocols, or high-performance computing).

A background in security research, including knowledge of firewalls, intrusion detection, or network architectures.
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
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28/06/2026
חברה חסויה
Location: Ra'anana
Job Type: Full Time
As AI Quality Architect, you are the person who makes quality native to the agentic SDLC. You design the systems, standards, and intelligence layers that ensure every stage of an AI-accelerated pipeline - from requirement ingestion to autonomous deployment - is observable, trustworthy, and continuously improving. You don't retrofit testing onto AI workflows; you architect quality into them from the ground up.
How will you make an impact?
Agentic Quality Architecture
Design the end-to-end quality architecture for agentic SDLC pipelines - spanning requirement analysis, code generation, test creation, execution, triage, and release gates
Define how quality agents are orchestrated: which decisions they own autonomously, which require human-in-the-loop checkpoints, and how confidence thresholds govern both
Architect multi-agent quality workflows: requirement validation agents, test generation agents, failure triage agents, and regression analysis agents working in coordinated pipelines
Establish trust and verification models for agent-produced artifacts - test code, assertions, coverage reports, and defect analyses must all be auditable and traceable
Own the architectural patterns for quality feedback loops between agents: how a deployment agent learns from a triage agent's findings, and how that signal improves future generation
AI-Native Test Engineering Platform
Design and own the LLM-powered test generation platform - from natural language requirement ingestion to executable, maintainable test output
Architect the evaluation harness that continuously measures test generation quality: coverage delta, false-positive rates, assertion accuracy, and maintenance burden over time
Build the self-healing test infrastructure layer - agents that detect broken selectors, drifted APIs, or changed behaviors and propose or apply fixes autonomously
Define the prompt engineering standards, context injection patterns, and RAG architectures that ground test generation agents in real codebase context
Architect test artifact governance: versioning, ownership attribution (human vs. agent), rollback capability, and confidence scoring for every generated artifact
Quality Gates in Autonomous Pipelines
Design intelligent, adaptive quality gates that operate at the speed of agentic CI/CD - gates that reason about risk, not just pass/fail thresholds
Build risk-scoring models that dynamically adjust gate strictness based on change scope, code origin (human vs. AI-generated), historical failure patterns, and deployment context
Architect the observability layer for agentic pipelines: what signals indicate a pipeline agent is making poor quality decisions, and how are those signals surfaced in real time
Define the integration patterns between quality gates and orchestration platforms (LangChain, LlamaIndex, custom agent frameworks) used across the engineering org
Establish rollback and circuit-breaker patterns for autonomous deployments triggered by quality signal degradation.
Requirements:
12+ years in software engineering with strong depth across both development and quality engineering
4+ years as a hands-on principal architect or distinguished engineer with cross-org technical scope
Demonstrated experience designing quality infrastructure used at scale - 50+ engineers, high-velocity pipelines, enterprise SLAs
Direct production experience building or operating systems that incorporate LLMs or AI agents - not evaluations, but shipped systems
Background in large-scale CI/CD architecture and the performance engineering domain
Enterprise SaaS or platform engineering background; familiarity with regulated, high-uptime environments strongly preferred
Agentic AI & LLM Proficiency
Deep, hands-on understanding of agentic AI patterns: tool use, multi-agent orchestration, planning loops, memory architectures, and human-in-the-loop design.
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
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דיווח על תוכן לא הולם או מפלה
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תודה על שיתוף הפעולה
מודים לך שלקחת חלק בשיפור התוכן שלנו :)
28/06/2026
חברה חסויה
Location: Ra'anana
Job Type: Full Time
As AI Quality Architect, you are the person who makes quality native to the agentic SDLC. You design the systems, standards, and intelligence layers that ensure every stage of an AI-accelerated pipeline - from requirement ingestion to autonomous deployment - is observable, trustworthy, and continuously improving. You don't retrofit testing onto AI workflows; you architect quality into them from the ground up.
How will you make an impact?
Agentic Quality Architecture
Design the end-to-end quality architecture for agentic SDLC pipelines - spanning requirement analysis, code generation, test creation, execution, triage, and release gates
Define how quality agents are orchestrated: which decisions they own autonomously, which require human-in-the-loop checkpoints, and how confidence thresholds govern both
Architect multi-agent quality workflows: requirement validation agents, test generation agents, failure triage agents, and regression analysis agents working in coordinated pipelines
Establish trust and verification models for agent-produced artifacts - test code, assertions, coverage reports, and defect analyses must all be auditable and traceable
Own the architectural patterns for quality feedback loops between agents: how a deployment agent learns from a triage agent's findings, and how that signal improves future generation
AI-Native Test Engineering Platform
Design and own the LLM-powered test generation platform - from natural language requirement ingestion to executable, maintainable test output
Architect the evaluation harness that continuously measures test generation quality: coverage delta, false-positive rates, assertion accuracy, and maintenance burden over time
Build the self-healing test infrastructure layer - agents that detect broken selectors, drifted APIs, or changed behaviors and propose or apply fixes autonomously
Define the prompt engineering standards, context injection patterns, and RAG architectures that ground test generation agents in real codebase context
Architect test artifact governance: versioning, ownership attribution (human vs. agent), rollback capability, and confidence scoring for every generated artifact
Quality Gates in Autonomous Pipelines
Design intelligent, adaptive quality gates that operate at the speed of agentic CI/CD - gates that reason about risk, not just pass/fail thresholds
Build risk-scoring models that dynamically adjust gate strictness based on change scope, code origin (human vs. AI-generated), historical failure patterns, and deployment context
Architect the observability layer for agentic pipelines: what signals indicate a pipeline agent is making poor quality decisions, and how are those signals surfaced in real time
Define the integration patterns between quality gates and orchestration platforms (LangChain, LlamaIndex, custom agent frameworks) used across the engineering org
Establish rollback and circuit-breaker patterns for autonomous deployments triggered by quality signal degradation.
Requirements:
12+ years in software engineering with strong depth across both development and quality engineering
4+ years as a hands-on principal architect or distinguished engineer with cross-org technical scope
Demonstrated experience designing quality infrastructure used at scale - 50+ engineers, high-velocity pipelines, enterprise SLAs
Direct production experience building or operating systems that incorporate LLMs or AI agents - not evaluations, but shipped systems
Background in large-scale CI/CD architecture and the performance engineering domain
Enterprise SaaS or platform engineering background; familiarity with regulated, high-uptime environments strongly preferred
Agentic AI & LLM Proficiency
Deep, hands-on understanding of agentic AI patterns: tool use, multi-agent orchestration, planning loops, memory architectures, and human-in-the-loop design.
This position is open to all candidates.
 
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הגשת מועמדותהגש מועמדות
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מודים לך שלקחת חלק בשיפור התוכן שלנו :)
חברה חסויה
Location: Ra'anana
Job Type: Full Time
We're looking for an AI Specialist Engineer to join our AI Enablement team. This is a high-impact role where you will build products and internal tools used across the entire company, while working with the most advanced AI tools and best practices available today.
Key Responsibilities:
Develop internal AI-powered products and tools used by teams across to work faster and smarter.
Lead the evaluation, integration, and rollout of AI-powered development tools across engineering teams.
Build proof-of-concept projects and internal tooling that demonstrate the practical value of AI in real workflows.
Develop best practices, prompt engineering guidelines, and training materials for AI-assisted development.
Stay current with the rapidly evolving AI tooling landscape and advise leadership on strategic adoption.
Work hands-on with the most advanced AI development tools and shape how the company uses them.
Requirements:
B.Sc. or M.Sc. in Computer Science, Electrical Engineering, or a related field, graduated with Honors
AI Development Tools: Hands-on experience using AI-powered coding assistants and agentic development tools - not just familiarity, but meaningful integration into your workflow.
Communication: Ability to explain technical concepts clearly and influence adoption across teams with varying levels of AI experience.
As part of the initial stages of the recruitment process, you will be required to submit an AI project presentation based on a project built using Claude Code.
This position is open to all candidates.
 
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