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Forward Deployed Engineer - Semiconductor

Job in San Francisco, San Francisco County, California, 94199, USA
Listing for: aijoblist
Full Time position
Listed on 2026-06-14
Job specializations:
  • Engineering
    Systems Engineer, AI Engineer (Applied/Software)
  • IT/Tech
    Systems Engineer, AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 130000 - 170000 USD Yearly USD 130000.00 170000.00 YEAR
Job Description & How to Apply Below

About the team

OpenAI’s Forward Deployed Engineering team partners with leading semiconductor companies to deploy production-grade AI systems across chip design, verification, and tooling workflows. We operate at the intersection of customer delivery and core platform development, embedding deeply with customers to translate frontier model capabilities into systems that materially reduce design cycles, improve verification quality, and accelerate innovation.

Our work turns early, high-touch deployments into repeatable solution patterns, reference architectures, and evaluation practices that scale across the semiconductor ecosystem — from chip designers to EDA vendors and, longer-term, fabrication partners.

About the role

We are hiring a Forward Deployed Engineer (FDE) to lead end-to-end deployments of OpenAI’s models inside semiconductor and chip design organizations. You will work with customers who are deep experts in hardware architecture, RTL, verification, and performance engineering, translating complex workflows, massive codebases, and long-running tool chains into production AI systems.

Your focus will span end-to-end semiconductor workflows, from chip design and verification through tooling and manufacturing-adjacent systems. You will help expand OpenAI’s footprint across the stack, shaping how frontier models are applied throughout the semiconductor lifecycle.

You will measure success through production adoption, cycle-time reduction, engineer productivity gains, and evaluation-driven feedback loops that inform product, model, and platform strategy. You’ll work closely with Product, Research, GTM, and Partnerships to turn early wins into a durable semiconductor vertical offering.

This role operates in environments where correctness, scale, and trust matter — regressions cost weeks, failures block tape-out, and credibility is earned through technical rigor.

This role is based in San Francisco. We use a hybrid work model of 3 days in the office per week. We offer relocation assistance. Travel up to 50% is required.

In this role you will
  • Design and ship production AI systems around models, owning integrations with RTL repositories, verification environments, simulators, and internal tooling.
  • Lead discovery and scoping from pre-engagement through production rollout, translating ambiguous engineering pain points into hypothesis-driven use cases with measurable outcomes.
  • Deliver AI-powered verification workflows such as change-aware test selection, directed test generation, and intelligent regression triage, taking them from prototype to daily production use.
  • Build systems that operate over large, evolving codebases and artifacts (RTL, tests, logs, waveforms, traces), where performance, latency, and failure handling shape architecture.
  • Define and run evaluation loops that measure model and system quality against workflow-specific benchmarks (e.g., coverage, false positives, debug time, iteration speed).
  • Own delivery state across multiple work streams, making trade-offs between scope, speed, and robustness to protect production impact.
  • Distill deployment learnings into hardened primitives, reference implementations, playbooks, and tooling that can be reused across customers.
  • Surface field insights that inform model behavior, tooling gaps, and future product direction across the semiconductor stack.
You might thrive in this role if you
  • Bring 5+ years of engineering experience in chip design, verification, EDA, or FPGA development (including RTL design, timing closure, and hardware/software co-design), or closely adjacent systems domains such as firmware, distributed systems, compilers, or performance-critical infrastructure.
  • Have worked directly with RTL, verification environments, simulators, or large-scale performance/debug tooling — or have partnered closely with teams who do.
  • Have delivered complex systems end-to-end in environments where scale, correctness, and long feedback loops shaped how you build and ship.
  • Write and review production-grade code in Python and/or systems-adjacent languages, and are comfortable integrating across heterogeneous tool chains.
  • Have experience deploying or experimenting with…
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