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General Motors' Data Labeling Engineering team builds and operates hybrid human/machine labeling tools powering autonomous vehicle ML models. We work across software, data, and ML to create scalable training data, with a modern full‑stack including TypeScript, React, GraphQL, Python, Golang and Airflow.
This role offers end‑to‑end ownership of projects, cross‑functional collaboration with ML engineers, Ops, Product, and Data Science, and the chance to advance toward technical leadership in a
Help teach our self‑driving vehicles how to see and understand the world! The Data Labeling Engineering team designs, builds, and operates high‑quality hybrid human/machine labeling tools and pipelines that power autonomous vehicle machine learning models across General Motors. We sit at the intersection of software engineering, data engineering, and ML, defining labeling strategies, tooling, and quality controls that create reliable training data at scale. Our team builds the mission‑critical products that let people and machines add “ground truth” labels to roads, objects, and complex driving scenarios in sensor data from self‑driving cars. These tools are used by thousands of labelers and dozens of ML teams to train and evaluate the models behind advanced driver assistance and autonomous features. We own a modern full‑stack architecture including TypeScript, React, GraphQL, Python, Golang, and ML model services, leveraging cloud platforms and workflow orchestration tools (e.g., Airflow) to power data‑annotation pipelines and ML‑led labeling solutions at foundation‑model scale. We partner closely with ML engineers, Operations, Product Management, Data Science, and other ML Platform groups. This role is ideal for an engineer who wants to own meaningful pieces of the stack, grow toward technical leadership, and work directly on systems that unblock the next generation of AV models.
This role is categorized as hybrid. This means the selected candidate is expected to report to a specific location at least 3 times a week or other frequency dictated by their manager. The selected candidate will be required to travel <25% for this role. This job may be eligible for relocation benefits.
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