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Lead ML Engineer - Mapping

Job in Ann Arbor, Washtenaw County, Michigan, 48113, USA
Listing for: May Mobility
Full Time position
Listed on 2026-06-18
Job specializations:
  • Engineering
    AI Engineer (Applied/Software), Robotics
Salary/Wage Range or Industry Benchmark: 250000 USD Yearly USD 250000.00 YEAR
Job Description & How to Apply Below

May Mobility is transforming cities through autonomous technology to create a safer, greener, more accessible world. Based in Ann Arbor, Michigan, May develops and deploys autonomous vehicles (AVs) powered by our innovative Multi-Policy Decision Making (MPDM) technology. Our vehicles provide value to communities, bridge public transit gaps and move people where they need to go safely, easily and with a lot more fun.

Since our founding in 2017, we've given more than 500,000 autonomous rides to real people around the globe. We’re hiring people who share our passion for building the future, today, solving real-world problems and seeing the impact of their work.

Essential Responsibilities
  • Architect, design, and implement a production-grade lane and route network mapping stack, ensuring high-performance integration with the broader autonomy system.
  • Lead the research, design, and training of advanced neural architectures, including vectorized mapping networks (e.g., MapTR), multi-camera BEV transformers, and LiDAR-camera fusion models to extract and model lane and route networks for offline and online mapping.
  • Lead major feature development from inception to deployment. This includes high-level architecture design, rigorous code reviews, automated testing, and technical resolution.
  • Own the end-to-end data strategy for the mapping domain. You will define data curation, auto-labeling, synthetic data, and active learning pipelines to capture and resolve long-tail scenarios.
  • Develop robust metrics and evaluation frameworks for lane and route network accuracy, temporal consistency, and scaling across diverse Operational Design Domains (ODDs).
  • Work independently with cross-functional teams to translate complex autonomy goals into clear software and system requirements.
  • Collaborate with ML and Autonomy engineers to ensure the seamless deployment and validation of mapping features to the vehicle fleet.
  • Stay at the research frontier by evaluating, adapting, and innovating cutting-edge techniques, including online vectorized HD map construction, end-to-end mapping models, and vision/fusion foundation models to deliver production-ready solutions.
Qualifications and Experience Required
  • Ph.D. or Master’s degree in Computer Science, Electrical Engineering, Robotics, or a related field with a strong mathematical and engineering foundation.
  • 7+ years of industry experience developing and deploying ML/DL models for mapping or computer vision at scale.
  • Deep expertise in several of the following areas:
    • Vectorized mapping networks (e.g., MapTR), BEV-based scene representation, and temporal modeling.
    • Self-supervised learning and vision/fusion foundation models.
    • Multimodal sensor fusion (Camera, LiDAR, radar, GPS/IMU).
    • Lane-level topology and connectivity, intersection modeling, and lane/road network graph construction.
    • Computer Vision tasks:
      Object detection, classification, segmentation, tracking, depth estimation, and 3D reconstruction.
  • Strong understanding of HD maps, including lane and road network geometry modeling, connectivity, and semantic attributes.
  • Expertise in ML/DL development using PyTorch or Tensor Flow, including experience with distributed training, synthetic data generation, large-scale dataset handling, and data curation strategies.
  • Strong programming skills in Python and/or C++ with experience in modular software design and Linux-based development.
  • Proven leadership in guiding technical roadmaps, mentoring engineers, and driving measurable improvements in model performance and system reliability.
  • Strong communication skills with the ability to lead technical discussions and align with cross-functional teams.
Desirable
  • 10+ years of experience in ML/DL for autonomous driving or ADAS systems.
  • Experience utilizing Vision-Language Models (VLMs) for auto-labeling and long-tail (edge-case) detection.
  • Expertise in ML optimization for real-time products with limited compute, such as quantization and pruning of large transformer models.
  • A proven publication record at top-tier conferences (e.g., CVPR, NeurIPS, ICCV, ECCV, ICLR).
Physical Requirements
  • Standard office working conditions which includes but is not limited to:
    • Prolonged…
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