Senior AI/ML Engineer

3M HEALTHCARE

Sunnyvale (CA)

Hybrid

USD 160,000 - 230,000

Full time

14 days+

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Job summary

General Motors is seeking a Senior Data Labeling Engineer to help teach our self-driving vehicles how to see and understand the world. You will design and operate hybrid human/machine labeling tools powering autonomous vehicle ML models within GM's AV organization.

Expect end‑to‑end ownership, cross‑functional collaboration, and hands‑on work across frontend, backend, and data/ML systems. You will work with a modern stack (TypeScript/React, Python, GraphQL, Go, SQL, WebGL) and build scalable

Qualifications

  • 6+ years of experience building robust distributed platforms and applications.
  • Proficiency in writing and reviewing high‑quality, scalable, and performant full‑stack code (Python, TS, Go, React, SQL, GraphQL, WebGL).
  • Strong fundamentals in OOD, data structures, algorithms, and engineering best practices (TDD, observability, CI/CD).
  • Experience developing and operating cloud‑based applications.

Responsibilities

  • Build high‑impact labeling experiences using modern frontend/backend tech.
  • Ship features across multiple surface areas for faster labeling of data.
  • Develop automation and tooling to give ML engineers deep insights into labeling workflows.
  • Collaborate with ML engineers to design ML‑driven data annotation (pre‑labeling, autolabeling).
  • Promote AI‑assisted engineering with modern AI‑powered development workflows.
  • Own projects end‑to‑end from problem framing to rollout; drive design discussions.

Skills

Python
TypeScript
Go
React
SQL
GraphQL
WebGL
CI/CD
Distributed systems
Cloud

Job description

Location

Remote/Hybrid: This role is based remotely but if you live within a 50-mile radius of Sunnyvale, CA you are expected to report to that location three times a week.

Overview

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. This role is ideal for an engineer who wants end‑to‑end ownership of meaningful pieces of the platform, growth toward technical leadership, and direct impact on systems that unblock the next generation of AV capabilities.

Responsibilities
  • Build high‑impact labeling experiences by designing, implementing, and testing scalable, high‑performance user experiences and services using modern full‑stack and/or frontend technologies.
  • Ship features across multiple surface areas that directly affect how quickly and accurately we can label data for new models and cities.
  • Level up how ML teams work with data by developing automation and tooling that give ML engineers deep insight into labeling workflows and data quality (e.g., efficiency dashboards, auto‑QA, autolabel review tools) to reduce iteration time from idea to trained model.
  • Apply ML to labeling itself by collaborating 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.
  • Champion AI‑assisted engineering by using and advocating for modern AI‑powered development workflows (code assistants, automated documentation, test generation, etc.) to increase velocity while maintaining quality.
  • Own projects end‑to‑end: take ownership from problem framing through design, implementation, and rollout; drive code reviews, design discussions, and technical decisions.
  • Collaborate across the AV stack by working with partner teams (ML, Ops, Product, Data Science, other platform teams) to translate abstract requirements into concrete workflows, APIs, and UIs that hit quality, cost, and latency goals.
Skills & Abilities
  • Passionate about self‑driving technology and its potential to transform safety, mobility, and the driving experience.
  • Driven to learn new technologies and deepen your expertise across frontend, backend, and data/ML‑adjacent systems.
  • Proven experience shipping and operating end‑to‑end products or features in production.
  • Strong communication and collaboration skills; you can explain tradeoffs, influence peers, and work through ambiguity with cross‑functional partners.
  • Empathetic to user challenges (from labelers to ML engineers to Ops) and excited to turn messy workflows into simple, intuitive tools.
Requirements
  • 6+ years of experience building robust distributed platforms and applications.
  • Hands‑on experience leveraging AI tools (agentic coding, search, documentation generators, 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, GraphQL, WebGL.
  • Solid understanding of relational databases, data modeling, and API design.
  • Strong fundamentals in object‑oriented design and design patterns, data structures, algorithms, and engineering best practices (TDD, code quality, observability, CI/CD).
  • Experience developing and operating cloud‑based applications.
  • Bonus Points: Experience using modern web APIs (Service Workers, Cache Storage, IndexedDB, etc.) in data‑intensive or visualization‑heavy applications.
  • Track record of close collaboration with customers, product managers, designers, and user experience researchers.
  • Experience with computer vision, machine learning, or data‑centric AI projects—especially where labeled data, data quality, or autolabeling loops were central to the work.
  • Familiarity with data labeling platforms or tools used by large labeling workforces (e.g., annotation UIs, workflow engines, quality systems).
  • Experience with A/B testing and telemetry/observability systems to measure impact and reliability.
  • Proficiency in writing and reviewing high‑quality, scalable, and performant code using TypeScript, React, Redux, GraphQL, WebGL, or similar frontend technologies.
Equal Employment Opportunity

General Motors is committed to being a workplace that is not only free of unlawful discrimination, but one that genuinely fosters inclusion and belonging. We strongly believe that providing an inclusive workplace creates an environment in which our employees can thrive and develop better products for our customers. All employment decisions are made on a non‑discriminatory basis without regard to sex, race, color, national origin, citizenship status, religion, age, disability, pregnancy or maternity status, sexual orientation, gender identity, status as a veteran or protected veteran, or any other similarly protected status in accordance with federal, state and local laws.

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