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NVIDIA

Architect – AI-Powered Performance Verification Automation

Posted 24 Days Ago
Be an Early Applicant
Remote or Hybrid
2 Locations
Mid level
Remote or Hybrid
2 Locations
Mid level
Design, develop, and deploy AI-powered automation for hardware performance verification. Build intelligent tools and agents for test generation, regression detection, failure analysis, and corrective recommendations. Integrate LLM assistants, create verification data pipelines, establish impact dashboards, and collaborate with verification engineers. Apply generative AI, reinforcement learning, and formal methods to improve coverage, reduce cycle times, and increase productivity across complex GPU, CPU, memory, and HPC verification workflows.
The summary above was generated by AI

NVIDIA has continuously reinvented itself. Our invention of the GPU sparked the growth of the PC gaming market, redefined modern computer graphics, and revolutionized parallel computing. Today, research in artificial intelligence is booming worldwide, which calls for highly scalable and massively parallel computation horsepower that NVIDIA GPUs excel.

NVIDIA is a “learning machine” that constantly evolves by adapting to new opportunities that are hard to solve, that only we can address, and that matter to the world. This is our life’s work , to amplify human creativity and intelligence. As an NVIDIAN, you’ll be immersed in a diverse, supportive environment where everyone is inspired to do their best work. Come join our diverse team and see how you can make a lasting impact on the world. As part of this team, you would be working on projects that will help make our next generation visual computing, automotive, GPU, HPC  systems better. You will get to work on high performance CPU and Memory sub-systems, Next-Gen GPUs , NOC based Interconnect Fabric etc. Make the choice to join us today.

We are looking for a motivated engineer to drive the transformation of performance verification workflows through AI and automation. In this role, you will design, develop, and deploy solutions that accelerate verification cycles, improve coverage, and reduce manual effort across hardware performance verification project lifecycles. You will be at the forefront of redefining how performance verification is done at scale — replacing repetitive manual analysis with intelligent, self-improving automation that helps engineers focus on what matters most.

What you'll be doing:

  • Automate verification workflows by building AI/ML-based tools that generate, triage, and analyse performance test cases and results

  • Develop intelligent agents that can identify performance regressions, root-cause failures, and recommend corrective actions

  • Integrate LLM-based assistants into existing verification infrastructure to enable natural-language querying of results, specs, and coverage data

  • Design data pipelines to collect, curate, and label verification data for model training and continuous improvement

  • Collaborate with verification engineers to understand pain points, define automation priorities, and validate AI-driven solutions against real-world workflows

  • Establish metrics and dashboards to measure automation impact (cycle time reduction, coverage improvement, engineer productivity)

  • Stay current with state-of-the-art techniques in generative AI, reinforcement learning, and formal methods as they apply to hardware verification

What we need to see:

  • B.Tech/M.Tech/PhD in Electrical Engineering, Computer Science, or a related field

  • 3+ years of experience in hardware verification, performance validation, or EDA tool development

  • Strong programming skills in Python; familiarity with C/C++, SystemVerilog/UVM is a plus

  • Hands-on experience with ML/AI frameworks (PyTorch, TensorFlow, scikit-learn) or LLM APIs (OpenAI, NVIDIA NIM/NeMo)

  • Understanding of performance verification methodologies (benchmarking, profiling, regression analysis)

  • Experience with CI/CD pipelines and infrastructure automation

Ways to stand out from the crowd:

  • Experience applying ML to EDA or verification problems (e.g., coverage closure, bug prediction, test generation)

  • Familiarity with RAG architectures, prompt engineering, and agentic AI frameworks (LangChain, CrewAI, etc.)

  • Knowledge of NVIDIA GPU/SoC architecture or similar complex hardware platforms

  • Published work or patents in AI-for-verification or related domains

#LI-Hybrid

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