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General Motors

ML Systems Engineer, Data Labeling Engineering - Early Career

Industry Technology & Software

Sunnyvale, California, United StatesPosted 6d ago

Job description

Job Description

About the Team

Help teach our self-driving vehicles how to see and understand the world.

The   Data Labeling Engineering   team designs, builds, and   operates   hybrid human/machine data labeling tools and pipelines that power autonomous vehicle machine learning models within General Motors'   AV organization . We   operate   in the intersection of   software engineering ,   data engineering , and   AI/ML , defining the strategies, tooling, and quality controls that create reliable training data at scale. Our tools and platform are used by thousands of users and consumers.

We own a modern full ‑ stack architecture including   TypeScript/React, Python,   GraphQL , Golang , and   ML model services , which powers data ‑ annotation pipelines and machine ‑ led training data solutions at   foundation ‑ model scale . We partner closely   across   AI/ML engineers ,   Product Operations ,   Product Management ,   Data Science , and other   ML

Platform   groups.

About the Role

As an early-career Software Engineer on the Data Labeling Engineering team, you will build tools and services that help machine learning teams create high-quality training data for autonomous driving. Your work may span frontend experiences, backend services, data pipelines, machine learning integrations, and quality systems used by labelers, ML engineers, and operations teams.

This role is designed for a recent college graduate or engineer early in their career   who wants to own meaningful pieces of a platform, grow their technical   expertise , and work directly on systems that enable the next generation of AV capabilities. You will learn from experienced engineers while contributing to production systems and developing depth across frontend, backend, data, and ML-adjacent technologies.

What   You’ll   Do   - Level up how ML teams work with data   Develop automation and tooling that give ML engineers deep insight into labeling workflows and data quality (e.g., efficiency dashboards, auto ‑ QA, autolabel review tools), reducing iteration time from idea to trained model.   - Apply ML to   labeling   itself   Collaborate with ML engineers to design and integrate ML ‑ driven data annotation (pre ‑ labeling,   autolabeling , active learning loops), helping us move from human ‑ only to machine ‑ led labeling at scale.   - Build high ‑ impact labeling experiences   Design, implement, and test scalable, high ‑ performance user experiences and services using modern full ‑ stack and/or frontend technologies.   You’ll   ship features spanning multiple   surface-areas   that directly affect how quickly and accurately we can label data for new models and cities.   - Champion AI ‑ assisted engineering   Use and advocate for modern AI ‑ powered development workflows (code assistants, automated documentation, test generation, etc.) to increase build-velocity while   maintaining   code and product quality.

Basic Qualifications   - Recently   completed a bachelor’s, master’s, or PhD degree in   Computer Science, Computer Engineering, Software Engineering, Artificial Intelligence, Machine Learning, or a related   STEM field.  For completed degrees, graduation must have occurred within the past   12   months.     - Experience   shipping   software or features through internships, research, academic projects, or   prior   professional work.   - Programming experience in one or more languages such as   Python, TypeScript, JavaScript, Go, Java, or C++.   - Familiarity with software fundamentals, including o bject-oriented design, design patterns, data structures, algorithms, API/interface design , and engineering best practices.   - Strong   communication   and collaboration   skills; you can explain tradeoffs, influence peers, and work through ambiguity with cross ‑ functional partners.   - Interest   in autonomous vehicles, robotics, machine learning, data-centric AI, or developer and ML platform technologies.

Preferred Qualifications   - Degree completed   betwee n May   2025 and August 2026, with availability to begin employment in 2026.   - Hands-on experience   leveraging   AI tools   (agentic workflows, knowledge acquisition, documentation generation, operational triage,   etc ) to accelerate understanding, implementation, debugging, and delivery of new capabilities.   - Proficiency   in writing and reviewing high ‑ quality, scalable, and performant full-stack code using technologies and languages like   Python, TypeScript, Go, React, SQL, Redux,   gRPC ,   GraphQL , WebGL, etc .   - Solid understanding of   scalable software system design   including data modeling and API/interface design.   - Strong fundamentals in   object ‑ oriented design and design patterns ,   data structures ,   algorithms , and engineering best practices (TDD, code quality, observability, CI/CD).   - Driven to   learn   new technologies   and deepen your   expertise   across frontend, backend, and data/ML ‑ adjacent systems.   - Empathetic to user challenges (from labelers to ML engineers to Ops) and excited to turn messy workflows into   simple, intuitive tools .

Location - Hybrid:  This role is categorized as  hybrid . This means the successful candidate is expected to report to our   Suynnvale , CA office three times per week, at minimum.     - This job may be eligible for relocation benefits

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 $1 25 , 00 0 to $1 65 , 0 00. 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.





 About GM

Our vision is a world with Zero Crashes, Zero Emissions and Zero Congestion and we embrace the responsibility to lead the change that will make our world better, safer and more equitable for all.

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