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לפני 16 שעות
חברה חסויה
Location: Yokne`am
Job Type: Full Time
Within ASIC networking product engineering group, you will help bring AI into product engineering by turning fragmented engineering data into scalable, production-ready solutions for analysis, decision-making, and efficiency.

In this role, you will define and deliver AI solutions that unify data across NVIDIA infrastructure and engineering systems, enabling advanced analytics for production engineering teams through AI agents, copilots, and workflow automation. You will own solutions end to end, from architecture and development through deployment, maintenance, and continuous improvement, and help shape how ASIC networking product engineering uses AI to scale engineering productivity.

What you'll be doing:

Design, build, and maintain AI solutions that improve our division efficiency across production, characterization, analysis, and operational workflows.

Develop agentic analytics capabilities that enable engineers to query, analyze, and reason over ASIC data using AI agents and copilots.

Consolidate data from multiple infrastructure and engineering systems into scalable, reliable pipelines and reusable services.

Partner with production engineering teams to identify pain points, define high-value use cases, and deliver measurable impact.

Build and support tools for data access, automation, reporting, anomaly detection, and engineering insight generation.

Collaborate across us to align interfaces, improve data quality, and support scalable deployment models.

Drive continuous improvement through user feedback, monitoring, and roadmap planning.
Requirements:
What we need to see:

Bachelors in Computer Science, Software Engineering, Data Science, or a related field, or equivalent experience.

8+ years of experience as an AI solutions engineer, machine learning engineer, or software engineer building production AI/data solutions.

Strong experience designing, developing, deploying, and maintaining end-to-end AI applications in production.

Hands-on expertise with Python and modern software engineering practices.

Practical experience with LLMs, AI agents, RAG, workflow orchestration, and data/analytics applications.

Strong background building data pipelines, APIs, services, and applications on top of structured and semi-structured engineering data.

Strong communication skills and a proactive, ownership-driven mindset.

Advantage: experience in semiconductor, hardware, product engineering, test, characterization, or manufacturing analytics environments.

f
Ways to stand out from the crowd:

Experience building AI solutions for engineering or manufacturing organizations.

Familiarity with agent frameworks, vector databases, telemetry platforms, or internal knowledge/data systems.

Background in cross-functional work spanning software, data, infrastructure, and product engineering.

Proven track record of introducing new technical capabilities and driving adoption across engineering teams.
This position is open to all candidates.
 
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1 ימים
Location: Yokne`am
Job Type: Full Time
We are hiring Senior AI / Machine Learning Engineers to compose, build, and operate production AI systems across classical machine learning, computer vision, large language models, and agentic workflows. You will work across the full AI engineering lifecycle, from initial development and evaluation to deployment, observability, and ongoing improvement. This role suits engineers who can switch easily between system architecture and hands-on implementation. It is for those who understand what it takes to make AI systems reliable at production scale.

What youll be doing:

Lead the build and delivery of production AI systems across machine learning, computer vision, LLM, and agentic use cases.

Build AI applications and agents that use tools, complete multi-step workflows, maintain state, and operate safely in production.

Develop evaluation strategies, test suites, quality metrics, and production feedback loops for models and AI applications.

Build scalable architectures covering model serving, APIs, data flows, workflow orchestration, observability, security, and failure recovery.

Build durable, distributed workflows using platforms such as Temporal, Prefect, or comparable technologies.

Deploy, monitor, and continuously improve AI systems for quality, latency, efficiency, reliability, scalability, and cost.

Make informed technical decisions around model selection, inference architecture, context management, structured outputs, tool use, and infrastructure.

Establish effective development, deployment, and validation practices for services, models, workflows, and infrastructure And provide technical leadership through architecture reviews, build decisions, code reviews, mentoring, and engineering guidelines.
Requirements:
What we need to see:

5+ years of experience in machine learning engineering, AI engineering, software engineering, platform engineering, or a comparable production-focused role.

Bachelors degree

A solid history of advancing innovative AI or machine learning systems from prototype to production.

Extensive knowledge in one or more fields including classical machine learning, computer vision, NLP, generative AI, or LLM applications.

Strong system-design skills, including experience with distributed systems, data-intensive applications, and cloud infrastructure.

Practical understanding of production LLM inference, including latency and efficiency trade-offs, context windows, token usage, model selection, and cost management.

Experience working with containers, orchestration platforms, CI/CD, monitoring, observability, and production incident investigation.

Sound engineering judgment around scalability, reliability, security, maintainability, and operational complexity.

The ability to independently guide complex technical projects and make effective decisions in ambiguous environments.

Strong communication and collaboration skills, including the ability to explain technical trade-offs to engineers, product teams, customers, and other collaborators.


Ways to stand out from the crowd:

Experience working with both traditional machine learning systems and contemporary LLM or agentic applications.

Excellent judgment about when agent-based approaches are appropriate-and when a simpler solution is more effective.

Experience making AI behavior measurable, observable, explainable, and safe in production.

Experience optimizing inference systems for performance, infrastructure efficiency, and operating cost.

A history of guiding engineers or heading cross-departmental technical projects.
This position is open to all candidates.
 
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