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Normal Computing

Hardware Engineer, Design Verification

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Remote or Hybrid
Hiring Remotely in San Francisco, CA, USA
Remote or Hybrid
Hiring Remotely in San Francisco, CA, USA

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Normal Computing | Incredible Opportunities

The Normal Team builds foundational software and hardware that help move technology forward - supporting the semiconductor industry, critical AI infrastructure, and the broader systems that power our world. We work as one team across New York, San Francisco, Copenhagen, Seoul, and London.
Your Role in Our Mission:

You will bring your expertise in the end-to-end design verification flow to support our Verification AI team. This is a hybrid verification and product-shaping role. You will verify internal hardware (Physics inspired ASICs) while simultaneously reviewing the collateral generated by our AI to help refine product strategy and tool usability. You will act as the bridge between raw verification data and our Machine Learning models, ensuring our AI learns from high-quality, curated, and synthesized data.

Responsibilities:

  • AI Product Refinement: Review AI-generated collateral to help shape product strategy and refine AI outputs in collaboration with the ML team.

  • Thermodynamic ASIC Verification: Provide design verification for internal hardware projects

  • Tool Usability: Set up and evaluate EDA tools, ensuring internal tool usability and effective deployment on shared computing resources.

  • Testbench Development: Verification collateral development: create testbench environments, assertions, and coverage, from design documents, to support product development, functional coverage, and coverage closure.

  • Dataset Annotation: Curate and annotate datasets to make it easier to associate specific parts of a chip specification with specific test cases.

  • Quality Control: Establish rigorous quality criteria for verification data and implement continuous refinement processes.

  • Automated QA: Implement data augmentation methods and automated quality assurance checks to ensure high-fidelity data for ML training.

  • Synthetic Data Creation: Generate synthetic data using AI-based methods to supplement real datasets.

  • ML Collaboration: Collaborate with ML teams to ensure synthetic data effectively challenges verification models.

  • Pipeline Automation: Build automated pipelines to annotate test data and link it explicitly to chip specifications.

  • Document Parsing: Automate document parsing (e.g., datasheets, protocol specifications) for contextual tagging and traceability.

What Makes You A Great Fit:

  • Experience: 5+ years of experience in Digital Verification at a major semiconductor or EDA tool company.

  • Technical Stack: Advanced proficiency in SystemVerilog, UVM methodology, EDA verification tools (vManager, Xcelium, Jasper), and proficiency and application of Python or Perl scripting.

  • Domain Knowledge: Proven expertise in end-to-end design verification, including test plan creation, stimulus generation, and feature extraction.

  • Communication: Excellent written and spoken communication skills.

Equal Employment Opportunity Statement

Normal Computing is an Equal Opportunity Employer. We celebrate diversity and are committed to creating an inclusive environment for all employees. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, veteran status, or any other legally protected status.

Accessibility Accommodations

Normal Computing is committed to providing reasonable accommodations to individuals with disabilities. If you need assistance or an accommodation due to a disability, please let us know at [email protected].

Privacy Notice

By submitting your application, you agree that Normal Computing may collect, use, and store your personal information for employment-related purposes in accordance with our Privacy Policy.

Normal Computing San Francisco, California, USA Office

San Francisco, CA, United States

What you need to know about the San Francisco Tech Scene

San Francisco and the surrounding Bay Area attracts more startup funding than any other region in the world. Home to Stanford University and UC Berkeley, leading VC firms and several of the world’s most valuable companies, the Bay Area is the place to go for anyone looking to make it big in the tech industry. That said, San Francisco has a lot to offer beyond technology thanks to a thriving art and music scene, excellent food and a short drive to several of the country’s most beautiful recreational areas.

Key Facts About San Francisco Tech

  • Number of Tech Workers: 365,500; 13.9% of overall workforce (2024 CompTIA survey)
  • Major Tech Employers: Google, Apple, Salesforce, Meta
  • Key Industries: Artificial intelligence, cloud computing, fintech, consumer technology, software
  • Funding Landscape: $50.5 billion in venture capital funding in 2024 (Pitchbook)
  • Notable Investors: Sequoia Capital, Andreessen Horowitz, Bessemer Venture Partners, Greylock Partners, Khosla Ventures, Kleiner Perkins
  • Research Centers and Universities: Stanford University; University of California, Berkeley; University of San Francisco; Santa Clara University; Ames Research Center; Center for AI Safety; California Institute for Regenerative Medicine

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