General Motors

Senior Manager, AI Deployment

General Motors$296K — $453K *
US-Anywhere
+ 2 other locationsRemote
Consumer Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in a relevant field; advanced degree preferred.
  • 10+ years experience in machine learning systems and related fields.
  • 5+ years of experience in a leadership role.
  • Experience in shipping production machine-learning inference systems on hardware.
  • Strong understanding of model performance determinants and optimization techniques.
  • Hands-on experience with tools like PyTorch, CUDA, and TensorRT.
  • Experience building automation for benchmarking and performance detection.

Responsibilities

  • Own strategy and roadmap for AI model performance and inference quality.
  • Establish performance budgets across various metrics including latency and throughput.
  • Lead investigations to identify performance bottlenecks and diagnose issues.
  • Create repeatable benchmarking practices for different environments.
  • Guide optimization of models through architectural and scheduling changes.
  • Develop performance dashboards and automate regression detection.
  • Collaborate with multiple teams on cross-functional performance initiatives.

Benefits

  • Comprehensive health benefits including medical, dental, and vision.
  • Health Savings and Flexible Spending Accounts.
  • Retirement savings plan options.
  • Life insurance and accident benefits.
  • Paid vacation and holidays.
Full Job Description

Job Description

About the Role

We are looking for a Senior Manager, AI Deployment to lead the strategy and execution of model performance and on-vehicle inference for autonomous driving. You will lead engineering managers and senior technical leaders working across model optimization, GPU systems, inference runtimes, and vehicle integration.You will set performance goals, guide optimization of complex autonomy models, and establish disciplined methods to measure latency, diagnose regressions, and validate improvements. Success requires strong technical judgment, people leadership, and the ability to make clear trade-offs among latency, memory, throughput, accuracy, power, and numerical parity.

What You99ll Do

  • Own the strategy, roadmap, and operating plan for AI model performance and inference quality.
  • Establish performance budgets for latency, throughput, memory, GPU utilization, power, and numerical parity.
  • Lead investigations into performance bottlenecks across model architecture, operators, kernels, memory movement, scheduling, runtime behavior, and hardware utilization.
  • Establish repeatable benchmarking and profiling practices across simulation, hardware-in-the-loop, bench, and vehicle environments.
  • Guide optimization through model architecture changes, operator and kernel improvements, memory optimization, scheduling, and hardware-aware execution.
  • Build performance dashboards, regression detection, benchmark automation, and root-cause diagnostics.
  • Partner with Embodied AI, model development, GPU kernel, runtime, system performance, vehicle integration, simulation, and safety teams.
  • Influence model design by translating profiling results into clear recommendations for model architects and researchers.
  • Represent AI Deployment in architecture reviews, program planning, and senior leadership discussions.

Leadership Responsibilities

  • Build and lead an inclusive, high-performing organization through hiring, coaching, feedback, and manager development.
  • Establish clear ownership, priorities, staffing plans, and operating rhythms across performance workstreams.
  • Define and manage KPIs for inference latency, latency variability, throughput, memory efficiency, GPU utilization, parity, and regression rate.
  • Balance near-term production needs with longer-term investments in profiling, optimization automation, reduced precision, and performance infrastructure.
  • Resolve cross-functional issues and align stakeholders when performance, quality, or implementation trade-offs are contested.
  • Develop technical leaders and succession plans in GPU performance, model optimization, inference systems, and numerical analysis.

Your Skills & Abilities (Required Qualifications)

  • Bachelor99s degree in Computer Science, Electrical or Computer Engineering, Robotics, Machine Learning, or a related field; advanced degree preferred, or equivalent experience.
  • 10+ years of experience in machine learning systems, model optimization, inference, GPU systems, robotics, autonomous driving, or a related field.
  • 5+ years of people-leadership experience, including experience leading managers or senior technical leaders.
  • Experience shipping production machine-learning inference systems on GPU, accelerator, robotics, automotive, or other edge hardware.
  • Strong understanding of the factors that determine model performance: architecture, tensor shapes, operators, kernels, memory movement, scheduling, runtime execution, and hardware utilization.
  • Hands-on experience with several of the following: PyTorch, CUDA, C++, Python, TensorRT, GPU profiling, benchmarking, performance analysis, or inference runtimes.
  • Experience with quantization, pruning, distillation, architecture optimization, kernel optimization, or memory optimization.
  • Experience building benchmark automation, performance regression detection, telemetry, dashboards, or profiling workflows.
  • Strong systems thinking, communication, decision-making, and cross-functional leadership skills.

What Will Give You a Competitive Edge

  • Experience optimizing real-time machine-learning systems for autonomous driving, robotics, embedded systems, or computer vision.
  • Deep experience with GPU performance, memory bandwidth, occupancy, synchronization, stream scheduling, or device-to-device data movement.
  • Experience with NVIDIA Nsight Systems, NVIDIA Nsight Compute, PyTorch Profiler, TensorRT profiling tools, or equivalent tools.
  • Experience deploying reduced-precision models and managing calibration, sensitivity, parity, and model-quality risks.
  • Experience optimizing transformer, vision, lidar, or multimodal workloads.
  • Experience measuring performance across simulation, hardware-in-the-loop, bench, and vehicle environments.
  • Experience with safety-critical or highly reliable systems.

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

  • Compensation: The expected base compensation for this role is: $296,300 - $453,900 Actual base compensation within the identified 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

#GM-AV-1

This role is categorized as remote. This means the selected candidate may be based anywhere in the country of work and is not expected to report to a GM worksite unless directed by their manager. The selected candidate will be required to travel <25% for this role. This job may be eligible for relocation benefits.

About General Motors

General Motors Company engages in the manufacture and sale of cars and trucks in the United States, China, Brazil, Germany, the United Kingdom, Canada, and Italy. It offers sedans, crossovers, sport utility vehicles, pick-up trucks, coupes, sports/convertibles and hybrid vehicles, hatchbacks/wagons, and vans, as well as mini cars in India. The company also provides parts and accessories, such as iPod and MP3 compatibility, mobility accessories, performance parts, AC parts and services, and merchandise. In addition, it offers vehicle safety, security, and information services. The company provides used vehicles. It offers its products through dealers and distributors. General Motors Company was formerly known as NGMCO, Inc. and changed its name to General Motors Company in July 2009. The company was incorporated in 2009 and is based in Detroit, Michigan. It operates manufacturing facilities in India, the United States, and Canada. General Motors Company operates as a subsidiary of the United States Department of The Treasury. General Motors led global vehicle sales for 77 consecutive years from 1931 through 2007, longer than any other automaker, and is currently among the world's largest automakers by vehicle unit sales. General Motors acts in most countries outside the USA via wholly-owned subsidiaries but operates in China through 10 joint ventures. GM's OnStar subsidiary provides vehicle safety, security, and information services. In 2009, General Motors shed several brands, closing Saturn, Pontiac, and Hummer, and emerged from a government-backed Chapter 11 reorganization. In 2010, GM made an initial public offering IPOs to date and returned to profitability later that year.

General Motors Careers

Join the dynamic team at General Motors, a global leader in automotive innovation and technology. At General Motors, we offer unparalleled job opportunities that propel your career forward while contributing to a legacy of engineering excellence.

Work You’ll Do

Embark on a career with General Motors to drive the future of mobility. Our team is dedicated to redefining the automotive landscape through innovation and leadership in electric vehicles and sustainable solutions. By joining us, you will be part of a culture that values diversity, teamwork, and continuous professional growth.

Transform Your Career

General Motors is not just a company; it's a community where you can grow your skills alongside the best in the industry. Our leadership is committed to providing every employee—from interns to senior professionals—with opportunities for career advancement, leadership development, and diversity training.

Innovate and Lead

At General Motors, innovation is at the core of everything we do. From research and development to manufacturing, our teams work collaboratively to lead the industry with cutting-edge technologies and sustainable practices. We encourage our employees to think big and push the boundaries of what’s possible.

Join Our Global Team

As part of our global workforce, you will collaborate with talented individuals who are passionate about shaping the future of transportation. General Motors offers a variety of career paths in engineering, design, IT, marketing, and more. With over 155,000 employees worldwide, our network provides expansive opportunities for networking and professional development.

Internship Programs and Employment Benefits

Start your career journey with a General Motors internship, where you can apply your academic knowledge to real-world projects. Our internships provide a robust foundation in the automotive industry, with mentorship from experienced leaders. Full-time employees enjoy a wealth of benefits, including comprehensive health care, retirement plans, and performance bonuses, ensuring that your hard work is rewarded.

Explore Job Opportunities

Whether you’re a seasoned professional or a recent graduate, General Motors offers positions that leverage your unique skills. Our hiring process is designed to identify and nurture talent, focusing on aligning your capabilities with the right opportunities for growth within the company.

Stay Connected

Join Our Team Search open positions that match your skills and interests. At General Motors, we look for innovative, driven, and solution-oriented team players. Explore the possibilities that await you in a career at General Motors.

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Learn more about General Motors
Size
157,000 employees
Market Cap
$46.9 billion
Industry
Net Income
$6.4 billion
Founded
1908
5 Year Trend
-3.2%
Revenue
$122.4 billion
NASDAQ

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