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NVIDIA

Senior AI ML Solution Engineer, AI-Native Development

NVIDIA
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onsite senior full-time Tel Aviv

First indexed 18 May 2026

Description

Job Summary

As a Senior AI ML Solution Engineer in the AI-Native Development team, you will design and build AI-powered development pipelines, evaluate ML approaches for code generation and review, and drive the adoption of AI-assisted software development across the organisation.

Key Responsibilities

  • Design and build AI-powered development pipelines , from code generation and automated review to feedback loops and evaluation systems.
  • Evaluate and select ML approaches for specific problems: when to use LLM prompting vs. fine-tuning (QLoRA), classical ML (random forest, linear regression) vs. reinforcement learning, RAG vs. structured extraction.
  • Architect feedback and evaluation systems that measure and improve AI output quality over time.
  • Review and refine AI solution architectures , evaluate design decisions, identify weaknesses, propose alternatives with reasoning.
  • Lead proof-of-concept development to validate new AI/ML approaches for development tooling.
  • Collaborate with the core team to define risk-based development levels and calibrate AI review depth per level.

Requirements

  • Hold a M.Sc. or Ph.D. in Computer Science, Electrical or Computer Engineering from a leading university (or equivalent experience).
  • 5+ years of industry experience (or equivalent) in AI pipelines architecture or related fields.
  • Industry experience building and shipping AI-powered tools or ML pipelines (not just training models , end-to-end delivery).
  • Strong understanding of LLM capabilities and limitations , prompt engineering, fine-tuning, RAG, agent architectures.
  • Experience with at least two of: reinforcement learning, classical ML, NLP/information retrieval, evaluation framework design.
  • Can reason about trade-offs: when to use which approach, with real reasoning backed by shipping experience.
  • Strong programming skills (Python required; familiarity with ML frameworks , PyTorch, HuggingFace, etc.).
  • Ability and flexibility to work and communicate effectively in a multi-national, multi-time-zone corporate environment.

Nice to Have

  • Experience with LLM-based code generation, code review, or developer tooling.
  • Familiarity with eval frameworks and feedback loop design (online and offline evaluation).
  • Experience with AI agent orchestration (multi-agent systems, tool use, planning).
  • Shown research track record (publications, open-source contributions).
  • Knowledge of AI-assisted development tools and their underlying architectures.