Senior Feature Engineer

General Motors

Northern (KY)

Hybrid

USD 120,000 - 160,000

Full time

7 days ago
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Job summary

General Motors is hiring a Senior Feature Engineer to design, develop, and operate the governed feature platform and reusable features for product analytics.

You will collaborate with data scientists and ML engineers to translate modeling requirements into production-ready features, while ensuring data quality, lineage, and CI/CD for pipelines and tools across a large distributed data environment.

Qualifications

  • 5+ years of experience in data engineering, feature engineering, or ML engineering roles.
  • Hands-on Databricks experience (Spark clusters, notebooks, Delta Lake).
  • Proficient in Python for data pipelines and feature transformation.

Responsibilities

  • Design, develop, and maintain scalable feature engineering pipelines.
  • Build feature transformation logic across large datasets.
  • Develop and operate feature pipelines in Databricks (Delta Lake, Unity Catalog).
  • Establish a feature store with versioning and train/serve parity.
  • Implement CI/CD for data/ML pipelines and data quality checks.

Skills

Python
SQL
Apache Spark
Databricks
CI/CD pipelines
Data quality
Git
Communication

Tools

Delta Lake
Unity Catalog
Kafka

Job description

## Senior Feature EngineerApply: Remote/Hybrid: Remote - United States: Full time: Posted Today: JR-202619038**Job Description****The Role:**General Motors is seeking a highly motivated and qualified candidate for the position ofSenior Feature Engineer on our Data & Feature Engineering team. This team builds the shared feature store, governance model, and platform tooling that power advanced analytics and machine learning solutions aimed at improving product reliability and performance.As a Senior Feature Engineer, you will lead the design, development, and operation of our governed feature platform, the shared infrastructure, standards, and tooling that domain teams use to define, certify, and serve reusable features for product analytics. This role sits at the intersection of data engineering and applied ML translating raw, high-volume data into reliable, reusable, production-grade features that data scientists and ML engineers can trust.**Key Responsibilities*** Design, develop, and maintain scalable feature engineering pipelines for ML/AI model development and production inference* Build and manage feature transformation logic using Python, SQL, and Apache Spark across large, distributed datasets* Develop and operate feature pipelines within Databricks (notebooks, jobs, Delta Lake, Unity Catalog)* Collaborate with data scientists and ML engineers to translate modeling requirements into well-defined, reusable features* Establish and maintain a feature store (or equivalent) to enable feature reuse, versioning, and consistency between training and inference (train/serve parity)* Implement CI/CD pipelines for feature and data pipeline code — automated testing, deployment, and rollback for pipeline changes* Define and enforce data quality checks (completeness, freshness, schema validation, drift detection, anomaly detection) across feature pipelines* Optimize Spark/Databricks jobs for performance, cost, and reliability at scale* Document feature definitions, lineage, and pipeline architecture for reproducibility and audit purposes* Partner with data engineering and platform teams to ensure features integrate cleanly with upstream data sources and downstream ML platforms* Monitor production feature pipelines and proactively resolve data quality or pipeline failures**Required Qualifications*** 5+ years of experience in feature engineering, data engineering, or ML engineering roles supporting AI/ML model development* Strong hands-on experience with Databricks (Spark clusters, notebooks, Delta Lake, workflows/jobs)* Proficiency in Python for data pipeline and feature transformation development (pandas, PySpark, modular pipeline design)* Strong SQL skills for complex data transformation, aggregation, and optimization* Solid working knowledge of Apache Spark (PySpark or Spark SQL) for distributed data processing at scale* Experience building and maintaining CI/CD pipelines for data/ML pipeline code* Demonstrated experience implementing data quality management practices validation frameworks, monitoring, and alerting* Understanding of ML workflows and how feature quality impacts model performance* Experience with version control (Git) and collaborative software development practices* Strong communication skills and ability to work cross-functionally with data science, ML engineering, and platform teams**What Will Give You A Competitive Edge (Preferred Skills)*** 8+ years of experience in data engineering.* Experience with vehicle telematics, battery health data, or embedded systems.* Familiarity with machine learning workflows and model deployment.* Experience with real-time data streaming technologies (e.g., Kafka, Delta LIVE Tables).GM does not provide immigration-related sponsorship for this role. Do not apply for this role if you will need GM immigration sponsorship now or in the future. This includes direct company sponsorship, entry of GM as the immigration employer of record on a government form, and any work authorization requiring a written submission or other immigration support from the company (e.g., H1-B, OPT, STEM OPT, CPT, TN, J-1, etc).This role is based remotely, but if the selected candidate lives within a specific mile radius of a GM hub, they will be expected to report to the location three times a week {or other frequency dictated by your manager}.This job is not eligible for relocation benefits. Any relocation costs would be the responsibility of the selected candidate.
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