
Posted 3 days ago
Digital Verification Engineer
AI Summary
A Digital Verification Engineer owns the verification environments and test suites for FPGA and ASIC digital subsystems, writing tests, building reusable verification components, and debugging simulations to catch functional bugs before tape-out.
About this role
Digital Verification Engineer
Location: Santa Clara, CA
Ladder: Silicon / Hardware Design
Travel: Minimal (0–10%)
Role Overview
At Nexthop AI, the correctness of our digital logic is non-negotiable — a single functional escape in an FPGA or ASIC can compromise an entire switching platform once it ships. We are looking for a Digital Verification Engineer to own the verification environments and test suites that prove our digital subsystems behave exactly as designed. Sitting within the Hardware Design organization, you'll work shoulder-to-shoulder with RTL designers and firmware engineers to catch bugs in simulation — long before they reach silicon, a board, or a customer's rack.
Key Responsibilities
1. Verification Environment Ownership
- Own the testbench: Design, build, and maintain the verification environments for our digital subsystems — from block level through full-chip / subsystem integration — for both FPGA and ASIC targets.
- Reusable methodology: Establish and evolve reusable verification components (drivers, monitors, scoreboards, checkers) so new blocks plug into a consistent, maintainable framework instead of one-off testbenches.
- Reference modeling: Develop behavioral / reference models where needed to independently predict expected DUT behavior and catch discrepancies automatically.
2. Test Development & Coverage
- Test suites: Author directed and constrained-random tests that exercise functional modes, corner cases, error injection, and reset / clock-domain behavior.
- Coverage-driven closure: Define functional and code-coverage goals and drive them to closure — identifying coverage holes and writing the stimulus to fill them.
- Assertions: Embed assertions (SVA) to catch protocol and interface violations at the source, close to where they occur.
3. Simulation, Debug & Regression
- Logic simulation: Run and debug simulations using Modelsim / Questasim and NC-Verilog; triage failures to root cause and partner with RTL designers on the fix.
- Regression: Stand up and maintain automated regression suites — keeping them fast, deterministic, and green so the team gets rapid feedback on every RTL change.
- Waveform debug: Debug efficiently at the waveform level and produce clear, reproducible failure reports that shorten the design–debug loop.
4. System Bring-up & HW/SW Co-validation
- Bring-up support: Support lab bring-up of FPGAs and boards, correlating pre-silicon simulation behavior against real hardware.
- Software collaboration: Partner with firmware / software engineers during system bring-up — validating register maps, interfaces, and boot / init sequences across the HW/SW boundary.
- Milestone sign-off: Contribute to verification exit criteria for design milestones, documenting coverage and open issues so the team can make informed tape-out / release decisions.
Required Qualifications
- Experience: 3–7 years of digital verification experience on FPGA or ASIC designs.
- Language: Proficiency in Verilog (SystemVerilog strongly preferred).
- Tools: Hands-on experience with logic simulators — Modelsim / Questasim and/or NC-Verilog.
- Methodology: Solid grounding in logic-simulation and verification fundamentals — testbench construction, constrained-random stimulus, functional / code coverage, and assertions.
- Education: BS/MS in Electrical Engineering, Computer Engineering, or a related field.
Strong Pluses
- Working knowledge of digital design and architecture (RTL design, pipelines, clock-domain crossing, bus / interconnect protocols).
- Experience collaborating with software / firmware teams on system bring-up and HW/SW co-validation.
- Structured verification methodology experience (UVM or equivalent).
- Familiarity with networking / switching datapaths or high-speed interfaces.
What Success Looks Like
- Zero Functional Escapes: The blocks you verify reach silicon and the field free of functional bugs, because your environment exercised the corner cases before anyone else could hit them.
- Coverage You Can Defend: Every milestone is cleared with documented functional and code coverage — no block signs off on "it seems to work."
- A Regression the Team Trusts: Fast, deterministic regressions catch breakage the same day it's introduced, so designers refactor with confidence.
- Bring-up Without Surprises: Because pre-silicon simulation matched real behavior, lab bring-up and HW/SW integration go smoothly — no late-stage firefighting.
Skills
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