Torc Robotics logo
Torc Robotics

Leading autonomous vehicle technology since 2007, Torc develops automated Level 4, Class 8 trucks with Daimler.

Staff ML Engineer – E2E

Machine Learning EngineerMachine Learning EngineerFull TimeRemoteLeadTeam 501-1,000Since 2007H1B SponsorCompany SiteLinkedIn

Location

Michigan

Posted

113 days ago

Salary

$219.7K - $329.6K / year

Seniority

Lead

Postgraduate Degree10 yrs expEnglishPythonPyTorchRayTensorflow

Job Description

• Lead E2E model design and development — define architectures that directly map multi-modal sensor inputs (camera, LiDAR, radar, HD maps) to mid- or high-level driving actions or cost functions. • Drive large-scale training and evaluation for E2E learning, integrating data from perception, behavior prediction, and control systems. • Develop and refine learning objectives that align with real-world driving metrics: safety, comfort, compliance, and efficiency. • Architect scalable pipelines for multi-task, multi-modal learning, leveraging both real-world and synthetic data. • Prototype and evaluate new paradigms such as differentiable planning, imitation learning, reinforcement learning, and world models for AV behavior. • Collaborate cross-functionally with Perception, Prediction, and Motion Planning teams to align interfaces and ensure consistency between learned and modular components. • Establish robust evaluation frameworks for E2E performance, including closed-loop simulation and on-road validation. • Mentor engineers and scientists in large-scale experimentation, model interpretability, and data-driven debugging. • Stay at the frontier of ML research, exploring advancements in foundation models, sequence modeling, self-supervision, and generative world representations.

Job Requirements

  • 10+ years of experience developing deep learning systems for perception, planning, or control.
  • M.S. or Ph.D. in Computer Science, Robotics, Electrical Engineering, or related field (or equivalent practical experience).
  • Deep expertise in multi-modal ML, sequence modeling, or policy learning (e.g., Transformers, diffusion models, imitation learning).
  • Proven track record in large-scale model training and optimization for real-world tasks.
  • Strong proficiency in Python, PyTorch, or TensorFlow, and experience with distributed ML frameworks.
  • Solid understanding of sensor fusion, spatiotemporal modeling, and vehicle dynamics.
  • Demonstrated leadership in driving technical roadmaps, mentoring teams, and delivering production-quality ML solutions.
  • Experience using Ray

Benefits

  • A competitive compensation package that includes a bonus component and stock options
  • 100% paid medical, dental, and vision premiums for full-time employees
  • 401K plan with a 6% employer match
  • Flexibility in schedule and generous paid vacation (available immediately after start date)
  • Company-wide holiday office closures
  • AD+D and Life Insurance

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