Apply now

Digital Verification Engineer

Santa Clara, CA, USFull-timePosted Jul 22, 2026
About Nexthop AI
Series BFunding stage
$610MTotal raised
22Open roles
$192,000Software Engineer median

Based on 1963 disclosed Software Engineer salaries on Fast AI Jobs ($23,000$485,000 range).

01

Job Description

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.