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Senior ML Inference Engineer - Platform

  • Localização
    • Austin, Texas
    • Mountain View, California
    • Remote
    • Sunnyvale, California
  • Tipo de trabalho Full time
  • Postou
  • Job Requisition JR-202602823

Descrição

About the Team

The Model Deployment & Inference Solutions team in GM AV deploys machine learning models from training frameworks (e.g. PyTorch) onto autonomous vehicle hardware. Our mission is two-fold: build the ML deployment platform that makes model rollouts fast and predictable, and optimize models so they meet the real-time latency and memory budgets required to run on-vehicle. Our work is on the critical path of GM's publicly committed launch of eyes-off (hands-free, eyes-free) autonomous driving in 2028, debuting on the Cadillac Escalade IQ, building on Super Cruise's billion-plus hands-free miles.  

About the Role

This role sits in the team's Platform pillar. We own the unified ML deployment platform that automates the path from a trained model to inference on the vehicle, along with the developer-experience and agentic-tooling layer that makes deployment self-serve for every ML model development team at GM. 

What you’ll be doing (Responsibilities)

  • Design, build, and operate the ML deployment platform that automates the path from trained model to on-vehicle inference. 

  • Drive cross-organization model deployments to the autonomous vehicle stack, partnering with model development teams to take high-value models from training to production on-vehicle. 

  • Build agentic tools that diagnose and fix deployment-blocking issues, automating workflows currently performed manually by engineers. 

  • Build the developer experience that ML model development teams use day to day: tooling, dashboards, automation, and observability. 

  • Drive shift-left validation that surfaces deployment risk (compile, runtime, parity, latency) early in the model development cycle. 

  • Build platform tools that integrate the work of our sister teams (kernels, compiler, reduced precision and parity) so their optimization wins land directly in the deployment workflow. 

  • Partner with the team's Performance pillar and model development teams across the AV organization. 

Your Skills & Abilities (Required Qualifications) 

  • BS, MS, or PhD in Computer Science or a related technical field. 

  • 3+ years of relevant industry experience. 

  • Strong fundamentals and excellent coding ability in Python. 

  • Experience building or operating production platform or infrastructure systems where reliability, observability, and extensibility matter. 

  • Experience with ML model deployment, inference integration, model optimization workflows, or model serving infrastructure, with at least one prior context where you owned the path from a trained model to a running inference workload. 

  • Experience using coding agents (Cursor, Claude Code, GitHub Copilot, or equivalent) as part of your engineering workflow. 

  • Experience designing clean, well-tested software with clear interfaces and good abstractions. 

  • Strong cross-team collaboration skills. 

What Will Give You A  Competitive Edge (Preferred Qualifications)    

  • Experience building agentic or LLM-powered developer tooling. 

  • Experience with ML or workflow orchestration frameworks (Airflow, Temporal, Flyte, Ray, Kubeflow, or equivalent). 

  • Familiarity with the NVIDIA GPU stack at the integration level (CUDA-aware Python, TensorRT, Triton inference server, torch.compile, ONNX). 

  • Experience with inference-serving frameworks (Triton, TorchServe, Ray Serve, vLLM) or edge-deployment toolchains. 

  • Experience with low-latency or real-time systems. 

  • Experience in autonomous vehicles, robotics, or other safety-critical ML deployment domains. 

  • Open-source contributions to PyTorch, Ray, Airflow, Temporal, vLLM, TensorRT, or related projects. 

  • 3+ years of relevant industry experience. 

Compensation: The compensation information is a good faith estimate only. It is based on what a successful applicant might be paid in accordance with applicable state laws. The compensation may not be representative for positions located outside of New York, Colorado, California, or Washington.  

  • The salary range for this role: is $128,700 to $261,300. The actual base salary a successful candidate will be offered within this range will vary based on factors relevant to the position. 

  • Bonus Potential: An incentive pay program offers payouts based on company performance, job level, and individual performance. 

  • Benefits: GM offers a variety of health and wellbeing benefit programs. Benefit options include medical, dental, vision, Health Savings Account, Flexible Spending Accounts, retirement savings plan, sickness and accident benefits, life insurance, paid vacation & holidays, tuition assistance programs, employee assistance program, GM vehicle discounts and more.

#GM-AV-1

função é exercida remotamente, mas se o candidato selecionado residir em uma quilometragem próxima ao escritório/fábrica da GM, ele deverá trabalhar presencialmente três vezes por semana {ou outra frequência determinada pelo seu gerente}.

O candidato selecionado deverá viajar <25% para esta função.

Esta posição pode ser elegível para benefícios de relocação.

Informações sobre diversidade

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Declaração de Igualdade de Oportunidades de Emprego (EUA)

A General Motors tem orgulho de ser um empregador que oferece oportunidades iguais.  Todos os candidatos qualificados serão considerados para o emprego, independentemente de raça, cor, religião, sexo, orientação sexual, identidade de gênero, origem nacional, deficiência ou status como veterano protegido. 

Adaptações (EUA e Canadá)

A General Motors oferece oportunidades a todos os candidatos a emprego, incluindo pessoas com deficiências. Se você precisa de uma adaptação razoável para ajudá-lo na sua pesquisa de cargos ou solicitação de emprego, fale conosco pelo e-mail [email protected] ou pelo telefone 800-865-7580. No seu e-mail, inclua uma descrição da adaptação específica que você está solicitando assim como o nome do cargo e o número de requisição do cargo ao qual está se candidatando.