Senior Machine Learning Engineer, Data Mining

Motional

Las Vegas (NM)

On-site

USD 172,000 - 229,000

Full time

14 days+

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Benefits offered by this job

Medical insurance
Dental insurance
Vision insurance
401k with company match
Health savings accounts

Job summary

Dormont Manufacturing Co is seeking a Machine Learning Engineer to revolutionize the way autonomous vehicles process multimodal sensor data. You will architect and train models, optimize deployment for real-time inference, and conduct research on agentic systems.

The ideal candidate has significant hands-on experience in machine learning engineering and will play a crucial role in ensuring production reliability and collaboration across various teams. Competitive compensation between $172,000 and $229,000 is offered.

Qualifications

  • 6+ years of hands-on experience in machine learning engineering.
  • Strong experience with model distillation and optimization.
  • Proven experience with reinforcement learning in production settings.

Responsibilities

  • Design and implement teacher-student model frameworks.
  • Build RL-based policy learning and reasoning systems.
  • Collaborate to deploy distilled models into production.

Skills

Machine learning engineering
Model optimization
Reinforcement learning
Python
ML frameworks (PyTorch, TensorFlow, JAX)

Education

BS in Computer Science or related field

Tools

AWS
GCP
Azure

Job description

Mission Summary:

At Motional, we’re transforming how autonomous vehicles discover critical intelligence hidden within petabytes of multimodal sensor data. Our next-generation autonomous driving stack depends on finding the rare edge cases, long-tail scenarios, and model errors that matter most. Omnitag, our ML-powered multimodal data mining framework, is the engine that powers this discovery.

What You’ll Do:

  • Architect and Train Distilled Models: Design and implement teacher‑student model frameworks for multimodal sensor data. Develop training pipelines for knowledge distillation. Ensure student models maintain high accuracy while drastically reducing inference latency and memory footprint.
  • Reinforcement Learning for Data Discover: Build RL-based policy learning and reasoning systems for autonomous driving applications. Implement and scale RL training workflows (e.g., PPO, DQN, actor‑critic methods) for simulation and real‑world interaction. Explore reward shaping, environment modeling, and multi‑agent RL where applicable.
  • Optimize Model Deployment for Real‑Time Inference: Collaborate with backend engineers to deploy distilled and RL models into production. Optimize for latency, throughput, and hardware efficiency across GPU/CPU clusters. Implement model versioning, A/B testing, and monitoring for performance regressions.
  • Research and Integrate Agentic Systems: Explore and prototype agentic workflows for autonomous reasoning, chain‑of‑thought prompting, and goal‑directed behavior. Integrate such systems into our broader autonomy stack as experimental or production components.
  • Drive Production Reliability: Establish patterns for graceful degradation, fault tolerance, and cost optimization. Operate Omnitag as a mission‑critical data platform serving the entire ML organization, with a focus on reliability, debuggability, and operational excellence.
  • Mentor and Collaborate: Work closely with ML scientists, data engineers, and autonomy teams to translate research advances into scalable engineering solutions. Guide junior engineers in best practices for model training, evaluation, and deployment.

What We’re Looking For:

  • BS in Computer Science, Machine Learning, or related field, or equivalent professional experience.
  • 6+ years of hands‑on experience in machine learning engineering, with a focus on model post training, optimization, and deployment.
  • Strong experience with model distillation or teacher‑student training – practical knowledge of loss functions, training strategies, and evaluation of compressed models.
  • Proven experience with reinforcement learning in production or research settings: policy optimization, reward design, simulation environments, and RL‑based reasoning.
  • Expert‑level proficiency in Python and ML frameworks (PyTorch, TensorFlow, or JAX).
  • Strong software engineering fundamentals: testing, CI/CD, containerization, and system design.
  • Experience deploying ML models in cloud environments (AWS, GCP, or Azure) and optimizing for inference.
  • Demonstrated ability to ship production‑grade ML systems and mentor team members.

Bonus Points (Nice‑to‑Haves):

  • MS/PhD in Computer Science, Machine Learning, or related field.
  • Experience with agentic systems, autonomous reasoning, chain‑of‑thought models, or LLM‑based planning.
  • Background in autonomous driving, robotics, or real‑time decision‑making systems.
  • Familiarity with multimodal learning, sensor fusion, or embodied AI.
  • Experience building active learning loops, using the model to find the data that breaks the model.
  • Experience with ML‑based data mining, active learning, or contrastive learning.
  • Knowledge of model serving tools (TF Serving, Triton, TorchServe) and MLOps platforms.
  • Publications or open‑source contributions in RL, distillation, or efficient ML.

$172,000—$229,000 USD

Benefits include medical, dental, vision, 401k with company match, health saving accounts, life insurance, pet insurance, and more.

Motional AD Inc. is an EOE. We celebrate diversity and are committed to creating an inclusive environment for all employees. To comply with Federal Law, we participate in E‑Verify. All newly‑hired employees are queried through this electronic system established by the DHS and the SSA to verify their identity and employment eligibility.

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