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Zoox (Lever)Work setting not specified

Engineering Manager, Onboard Execution Performance

Zoox · Foster City, CA

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Published 2026-04-17 · Seen in source Sep 27, 2026 at 21:45 UTC

Job details and requirements

Zoox is building the world's most advanced self-driving hardware and software solution. The efficiency demands of such a system require an expert fine tuning of both the compute hardware architecture as well as the algorithms and middleware that runs on it to achieve maximum throughput at the most optimal power levels. The Software Performance team keeps the main onboard computer healthy and performant to ensure that our on-bot autonomy software meets its latency targets while also accommodating its safety goals. We are responsible for the efficient allocation of onboard compute resources (CPU/GPU/Memory/accelerators) ensuring contention is minimized and the autonomy stack executes harmoniously. As the Onboard Execution team leader within the Performance team, you will lead a highly specialized team of software performance engineers in aggressively optimizing on-bot software runtime. This is a high impact role that sits at the intersection of ML Platform, Core, and Autonomy Software - ensuring that efficient compute utilization is a central tenet emphasized across the organization. In this role, you will: Manage a team of 8-to-10 engineers focused on optimizing the software performance of the on-bot autonomy software stack. Partner with Autonomy, ML Platform, Middleware, Sensors, and Hardware Architecture teams to meet strict system response (latency) and compute utilization targets. Achieve alignment between cross-functional leaders across the Software organization on compute resource allocations and budgets. Hire, grow, and develop talent in the realm of performance optimization. Build self-service force-multiplier frameworks & workflows that empower developers to deliver efficient & performant software. Qualifications BS in computer science, computer engineering, or related field Proficiency with C++ & concurrent (parallel) execution systems Deep knowledge and understanding of the Linux operating system and GPU accelerated execution Proven track record of cross-functional collaboration and leadership alignment Prior experience managing teams of five or more full-time software engineers Bonus Qualifications Hands-on experience with GPU runtime frameworks (CUDA, TensorRT, or XLA) Experience in robotics, aviation, automotive, or high-performance computing space Have shipped real-time or near-real-time software autonomy or robotics software in production Experiencing debugging and optimizing CPU, GPU kernels, and ML models using tools like NVIDIA Nsight Systems and Compute, Perfetto or similar compute observability tools

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