Applied ML Validation Manager

General Motors

Sunnyvale (CA)

On-site

USD 150,000 - 180,000

Full time

14 days+

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Job summary

A leading automotive company in California is seeking an Applied ML Validation Manager to lead a team focused on behavior evaluation and benchmarking for machine learning systems in autonomous vehicles. The successful candidate will define strategies for evaluating ML behavior against human-driving expectations. Requirements include a master's or doctorate in relevant fields and extensive management experience, particularly with ML and validation pipelines. Join us to advance the field of autonomous driving.

Qualifications

  • 8+ years of experience in related fields.
  • 2+ years of people management experience.
  • Strong programming and data skills in Python.
  • Experience in designing and operating evaluation pipelines.

Responsibilities

  • Lead and grow an Applied ML validation team.
  • Define strategy for evaluating ML behavior against human-like driving expectations.
  • Design and implement behavior critic frameworks.
  • Develop human benchmarking programs.
  • Integrate outputs into training and validation.

Skills

Python
Data analysis
Machine Learning
People management
Evaluation validation pipelines

Education

MS/PhD in Computer Science, Machine Learning, Robotics, Software Engineering, or Data Science

Tools

PyTorch

Job description

Role

As an Applied ML Validation Manager on the Software Validation team within the AV organization, you will lead a team focused on building and operating behavior critics and human benchmarking capabilities for ML-driven autonomy systems. Your team will turn subjective human expectations about safe, comfortable, and intuitive driving into rigorous, scalable evaluation frameworks that directly inform model development and release decisions.

You will partner closely with autonomy, simulation, safety, and product teams to define how behavior is judged against human drivers and integrate behavior critic signals into validation pipelines, continuous release, and long-term performance monitoring.

About the Organization

The Autonomous Vehicle (AV) organization is dedicated to advancing the development of autonomous vehicles through cutting-edgesimulation technologies and novel iterative development processes.

The Software Validation team focuses on unlocking software launches and continuous release decisions via simulation-led verification and validation strategies, prototypes, and protocols. Our collaborative environment fosters innovation and excellence, allowing us to push the boundaries of what is possible in autonomous vehicle testing.

Key Responsibilities
  • Lead and grow an Applied ML validation team focused on behavior evaluation and human benchmarking for autonomy ML systems.

  • Define the strategy and roadmap for evaluating ML behavior against human-like driving expectations across simulation, replay, and on-road environments.

  • Design, implement, and operate behavior critic frameworks that assess model actions and trajectories, turning qualitative human feedback into structured labels, metrics, and scorecards.

  • Develop and scale human benchmarking programs, including rater guidelines, calibration, and quality controls, to compare ML system performance against expert and typical human drivers.

  • Partner closely with autonomy, simulation, safety, and product teams to integrate behavior critic and human benchmarking outputs into training, offline validation, release gating, and reporting.

Basic Qualifications
  • 8+ years of experience and MS/PhD in Computer Science, Machine Learning, Robotics, Software Engineering, Data Science, or a related field.

  • 2+ years of people management experience leading engineering, validation, or applied ML teams.

  • Strong programming and data skills in Python and common analysis/ML tooling (e.g., PyTorch).

  • Demonstrated experience designing and operating evaluation/validation pipelines for complex ML systems.

  • Proven ability to define, implement, and track metrics that capture system quality, reliability, safety, or user experience.

Preferred Qualifications
  • Experience with autonomous driving, robotics, or other safety-critical domains, especially in validation, safety, or systems engineering roles.

  • Demonstrated background with simulation-based validation, including VLM critics, human benchmarking, and scalable evaluation for ML or autonomy systems.

  • Hands-on experience with agentic workflows used to accelerate analyses, automate documentation, or orchestrate complex data and metric pipelines.

  • Track record of building or scaling technical teams and tooling in fast-evolving domains, especially focused on evaluation, automation, and ML observability.

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