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Lynn Rodens Linkedin · Posted 4mo ago

Computer Vision Engineer

San Diego, California, United States

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Indexed description

Join a fast-moving team building real-time vision systems that power advanced tracking and simulation technology. In this role, you will design and implement computer vision solutions that track objects and motion using high-speed, multi-camera data in a hardware-integrated environment.

What You’ll Do

  • Develop real-time algorithms for object detection, tracking, pose estimation, and motion analysis
  • Process high-frame-rate, multi-camera data to generate accurate 3D trajectories and impact insights
  • Collaborate with hardware, firmware, and simulation teams to integrate vision pipelines into embedded and desktop systems
  • Optimize performance using multithreading, SIMD, and GPU acceleration
  • Apply camera calibration, stereo vision, and sensor fusion for precise spatial modeling
  • Prototype new concepts, evaluate sensors, and support field testing
  • Write clean, testable code with unit and integration testing
  • Document algorithms, workflows, and data pipelines
  • Support ML workflows including dataset versioning, experiment tracking, and deployment (Azure ML)
  • Maintain MLOps tools (e.g., CVAT, training pipelines, evaluation workflows)

Required Qualifications

  • Bachelor’s or Master’s in Computer Science, Computer Engineering, Electrical Engineering, or related field
  • 3+ years of computer vision experience in real-time, product-focused environments
  • Strong Python skills with OpenCV or similar libraries
  • Solid understanding of camera geometry, calibration, and lens distortion correction
  • Experience with multi-camera systems, stereo vision, or 3D reconstruction
  • Knowledge of tracking techniques (optical flow, Kalman filters, background subtraction, deep learning)
  • Experience with real-time optimization, parallel processing, or embedded CV deployment

Preferred Qualifications

  • C++, PyTorch, or TensorFlow experience
  • GPU programming (CUDA/OpenGL)
  • Embedded systems or real-time video pipelines
  • MATLAB or ROS exposure
  • Azure ML (workspaces, compute, experiment tracking)
  • Docker and containerized ML workflows
  • Azure ML DevOps pipelines for automated training and deployment
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