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Design Verification Infrastructure Sr. Staff Engineer

Marvell
Santa Clara, United Statesfull_timeVerifiedPosted 28 Jul 2026
💰 $191,200/yr($127,630/yr$191,200/yr)

About the role

About Marvell

Marvell’s semiconductor solutions are the essential building blocks of the data infrastructure that connects our world. Across enterprise, cloud and AI, and carrier architectures, our innovative technology is enabling new possibilities. 

At Marvell, you can affect the arc of individual lives, lift the trajectory of entire industries, and fuel the transformative potential of tomorrow. For those looking to make their mark on purposeful and enduring innovation, above and beyond fleeting trends, Marvell is a place to thrive, learn, and lead. 

Your Team, Your Impact

Marvell's Central CAD engineering group is building next-generation AI-integrated ASIC design verification flow. A deterministic Python framework owns everything that decides pass/fail and everything that must be reproducible — build, run, verdict, coverage, and the quality gates — while an AI layer sits on top for the judgment-heavy work: deciding what to run, triaging failures, and proposing fixes that a human approves. The rule is straightforward: AI proposes, the deterministic framework disposes, a human approves. You will design and own the Python components at the heart of that framework and put them in the hands of the DV engineers who depend on them every day. It is hands-on, high-ownership work with a short path from your code to real impact — the engineers you are building for sit right next to you.

What You Can Expect

  • Design and own core Python framework components: the declarative build graph and its importer, the run-record store that makes every run reproducible, coverage merge, and verdict logic 

  • Build the simulator backend abstraction — command generation and capability modeling for Cadence Xcelium (MSIE incremental elaboration) and Synopsys VCS — so adding a simulator is a new backend and nothing else changes 

  • Assemble self-contained, token-efficient failure bundles (waveforms, logs, run-record fields, testbench configuration, and source pointers) so downstream agents can debug in one place 

  • Wire the integrations: compute-grid job submission, the results dashboard, CI for the gate-blocking changelist path, and the MCP endpoints the agents consume 

  • Support the AI layer without owning any ML: author reusable agent skills and prompts, build evaluation harnesses to measure triage and fix quality, and enforce the deterministic guardrails around the agents 

  • Package, deploy, and operate the flow — roll it out to verification teams across sites, then monitor and troubleshoot in production 

  • Write the docs and reusable procedures that let the rest of the org adopt the flow 

What We're Looking For

  • Bachelor’s degree in Computer Science, Electrical Engineering or related fields and 3-5 years of related professional experience or Master’s degree and/or PhD in Computer Science, Electrical Engineering or related fields with 2-3 years of experience or equivalent professional experience in lieu of a formal degree

  • Strong, idiomatic Python: clean, testable code and solid command-line tooling 

  • Comfort on Linux and the command line, and with Git 

  • Solid data-structures fundamentals, including graphs/DAGs — the build model is a dependency graph 

  • Working knowledge of CI/CD 

  • Self-directed: can take a well-scoped problem and deliver a component end to end 

  • Clear written communication; the team is collaborative and distributed across time zones 

Preferred 

  • Hardware-verification fundamentals and exposure to SystemVerilog/UVM 

  • Hands-on with an EDA simulator — Cadence Xcelium and/or Synopsys VCS 

  • Coverage concepts: collection, merge, and closure 

  • Comfort using AI coding agents, with a habit of critically evaluating their output 

  • Exposure to MCP or other agent/tool integration 

  • Familiarity with compute-grid job scheduling (LSF, SLURM, or SGE) 

Expected Base Pay Range (USD)

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Company

Marvell

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