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McMaster Innovation Park
Canada, ON L8P 0A1

+1 (905) 9797 626

info@rozor.ai

Job Description:

We are looking for a Robotics AI Engineer (Deep Learning for Autonomy) to design, train, and deploy neural models that power high-level autonomy behaviors in ROZOR robots.
You will work on dynamic obstacle prediction, semantic mapping, scene understanding, behavior forecasting, and learning-based navigation.

Your contributions will directly enhance how ROZOR robots interpret human movement, anticipate obstacles, and make navigation decisions inside active indoor environments.

Responsibilities:

  • Develop deep learning models for:
    • Dynamic obstacle detection and motion prediction
    • Behavior forecasting in crowded environments
    • Semantic mapping and spatial understanding
    • Learning-based navigation and path optimization
  • Work with multi-modal data including RGB, LiDAR, depth, IMU, maps, and trajectories
  • Build pipelines for training, evaluation, and validation of autonomy-related neural models
  • Integrate learned models into ROS2-based autonomy stacks
  • Collaborate with planning, perception, and embedded teams to ensure real-time performance
  • Conduct robot field testing to validate learning-based behaviors
  • Analyze failure cases and retrain or refine models accordingly
  • Support dataset generation, annotation, and ML operations workflows

Preferred Qualifications:

  • Bachelor’s/Master’s in AI, Robotics, Computer Science, or related field
  • Strong foundation in deep learning, computer vision, or reinforcement learning
  • Proficiency with PyTorch or TensorFlow
  • Experience working with time-series, trajectory data, or sequential prediction models
  • Understanding of robot navigation, SLAM, mapping, or motion planning concepts
  • Experience training models for detection, tracking, segmentation, or prediction
  • Familiarity with ROS/ROS2 and real-time robotics pipelines
  • Strong debugging and analytical skills
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