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AI SoC Modeling Engineer, Annapurna Labs Machine Learning Accelerators, AWS

Amazon.com Inc
  • Cupertino, CA
    1 day ago

    Job Description

    AWS"s Trainium and Inferentia chips power the world"s largest machine learning clusters. Our team builds C++ models of these custom SoCs that RTL designers, verification engineers, and software teams depend on throughout the silicon development lifecycle. We"re looking for a modeling engineer to build and own models that directly impact how our chips are designed, verified, and brought to production.

    What you"ll do:

    • Develop and maintain high-fidelity functional model of AI/ML accelerator and its SoC subsystems, including compute engines, memory hierarchies, on-chip interconnects, and data paths - translating architecture specs and RTL behavior into accurate, testable C++ models
    • Validate model behavior against RTL simulations, emulation platforms, or silicon measurements; debug discrepancies and drive model-to-RTL correlation to high fidelity
    • Partner with design verification teams to integrate models into pre-silicon validation environments and catch architectural bugs early in the design cycle
    • Collaborate with architects/micro-architects, RTL design engineers, ML SW engineers, and compiler engineers to evaluate architecture and microarchitecture tradeoffs and help make hardware design decisions
    • Contribute to cycle-approximate performance model effort enabling architectural exploration ahead of RTL availability, early software development
    • Quantify system-level tradeoffs across compute, memory bandwidth, networking, and storage to influence reference architectures and long-term silicon strategy
    • Build and improve modeling infrastructure: simulation frameworks, regression suites, automated correlation checks, and coverage-driven validation flows
    • Develop modeling methodologies and tools that scale across multiple IP blocks and SoC generations, improving team efficiency and model reuse

    Why this role is interesting:

    • Your models are used to verify silicon before it"s built - bugs you catch save months of schedule and millions of dollars
    • You"ll work at the intersection of software engineering and chip design, with deep visibility into how custom ML accelerators are architected
    • As the team scales, there"s a clear path into architectural modeling - using your models to influence chip design decisions, not just validate them
    • Small team, high ownership, direct impact on AWS"s most strategic silicon programs

    You will thrive in this role if you:

    • Have built functional or performance models of SoCs, ASICs, GPUs, CPUs, or IP blocks
    • Are comfortable working with architectural / design specifications or reference implementations and translating them into C++ or SystemC models
    • Understand verification concepts and have worked with DV teams or in pre-silicon validation environments
    • Care about model fidelity and have experience correlating models against RTL or silicon
    • Are interested in expanding into architectural performance modeling as the team grows
    • Enjoy working on a small, high-impact team where you own significant pieces of the stack

    No ML background needed. You"ll learn the ML accelerator domain on the job.

    This role can be based in Cupertino, CA or Austin, TX.

    Numbers & Facts

    LocationCupertino, CA
    IndustryRetail
    Company Size10,000 employees or more
    Year Founded1994
    Websitehttp://Amazon.com/militaryroles

    About Company

    At Amazon, we don’t wait for the next big idea to present itself. We envision the shape of impossible things and then we boldly make them reality. So far, this mindset has helped us achieve some incredible things. Let’s build new systems, challenge the status quo, and design the world we want to live in. We believe the work you do here will be the best work of your life.

    Wherever you are in your career exploration, Amazon likely has an opportunity for you. Our research scientists and engineers shape the future of natural language understanding with Alexa. Fulfillment center associates around the globe send customer orders from our warehouses to doorsteps. Product managers set feature requirements, strategy, and marketing messages for brand new customer experiences. And as we grow, we’ll add jobs that haven’t been invented yet.

    It’s Always Day 1
    At Amazon, it’s always “Day 1.” Now, what does this mean and why does it matter? It means that our approach remains the same as it was on Amazon’s very first day – to make smart, fast decisions, stay nimble, invent, and stay focused on delighting our customers. In our 2016 shareholder letter, Amazon CEO Jeff Bezos shared his thoughts on how to keep up a Day 1 company mindset. “Staying in Day 1 requires you to experiment patiently, accept failures, plant seeds, protect saplings, and double down when you see customer delight,” he wrote. “A customer-obsessed culture best creates the conditions where all of that can happen.” You can read the full letter here

    Our Leadership Principles
    Our Leadership Principles help us keep a Day 1 mentality. They aren’t just a pretty inspirational wall hanging. Amazonians use them, every day, whether they’re discussing ideas for new projects, deciding on the best solution for a customer’s problem, or interviewing candidates. To read through our Leadership Principles from Customer Obsession to Bias for Action, visit https://www.amazon.jobs/principles

    Skills

    • ASIC (Application Specific Integrated Circuit)unmatched
    • Amazon Web Services (AWS)unmatched
    • Architectural Designunmatched
    • Architectural Servicesunmatched
    • Artificial Intelligence (AI)unmatched
    • C++ Programming Languageunmatched
    • CPU (Central Processing Unit)unmatched
    • Debugging Skillsunmatched
    • Design Verificationunmatched
    • Develop Methodologiesunmatched
    • GPU (Graphics Processing Unit)unmatched
    • Hardware Designunmatched
    • IP (Internet Protocol)unmatched
    • Machine Learningunmatched
    • Memory Hardwareunmatched
    • Model Validationunmatched
    • Performance Modelingunmatched
    • Product Lifecycleunmatched
    • RTL Designunmatched
    • Requirements Managementunmatched
    • Simulationunmatched
    • Software Developmentunmatched
    • Software Engineeringunmatched
    • System-on-a-Chip (SoC)unmatched
    • Team Playerunmatched
    • Technical/Engineering Designunmatched
    • Verification Engineeringunmatched

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