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Torc Robotics
Ann Arbor, MI, Remote - US
Source: Torc Robotics careers · View original posting
From Torc Robotics's posting. “We” and “our” refer to the employer.
At Torc, we have always believed that autonomous vehicle technology will transform how we travel, move freight, and do business.
A leader in autonomous driving since 2007, Torc has spent over a decade commercializing our solutions with experienced partners.
Now a part of the Daimler family
, we are focused solely on developing software for automated trucks to transform how the world moves freight.
Join us and catapult your career with the company that helped pioneer autonomous technology, and the first AV software company with the vision to partner directly with a truck manufacturer.
The Pseudo-Labeling team's goal is to create high-quality annotations on sensor data (images, point clouds). The annotations include 2D, 3D bounding boxes, classes, trajectories, lane lines, segmentations, depths, and high-definition map elements. The annotations are then used by different downstream users — for example, perception teams use them to train various models, mapping teams use them to build and maintain HD maps, and simulation teams use them for generating new data.
Considered highly skilled and proficient in discipline; conducts complex, important work under minimal supervision and with wide latitude for independent judgment.
Scope of Influence: Expected to drive alignment across team interfaces to the rest of the organization. Designs, maintains and owns team technical solutions and drives consensus. Mentors and guides engineers within the group.
Bachelor’s Degree in Computer Science, Robotics, Electrical Engineering or related technical field plus demonstrated competencies and technical proficiencies typically acquired through 6+ years of experience OR; Master’s Degree in Computer Science, Robotics, Electrical Engineering or related technical field plus demonstrated competencies and technical proficiencies typically acquired through 3+ years of experience OR; PhD in Computer Science, Robotics, Electrical Engineering or related technical field plus demonstrated competencies
and technical proficiencies typically acquired through 1+ years of experience.
Required Qualifications (some combination of the following skills):
Experience in lane line annotation creation or automatic mapping/map creation.
Familiarity with the latest lane line detection and creation machine learning models.
Familiarity with pose estimation.
Active Learning & Pseudo-labeling – Computer Vision, Deep Learning, Model training.
Two of the following: 2D/3D Object Detection, Tracking, Sensor Fusion, Semantic Segmentation, SLAM, BEV.
Scaled ML Operations (MLOps) and Tooling – ML Frameworks, experiment tracking, model registry, MLflow, Weights and Biases, ML Metrics and Evaluation / Quality.
Distributed machine learning frameworks – PyTorch, Lightning, Ray.
Model Data Curation – Parquet data processing (PyArrow, Daft, Pandas, etc).
Development Tools & Eco-System (at scale) – Proficiency in Python software development. Also, VDI and cloud-based development environments, CI Systems (GitHub Actions), and Docker.
Bonus Points!
PPK/RTK (Post-Processed Kinematic / Real-Time Kinematic) GPS experience.
GIS (Geographic Information Systems) experience.
US Pay Range
$177,300 — $212,800 USD
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