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Quartermaster AI

Machine Perception Engineer (Vision)

Posted 7 Days Ago
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Remote or Hybrid
Hiring Remotely in California, USA
Senior level
Remote or Hybrid
Hiring Remotely in California, USA
Senior level
Lead the development of edge-deployed perception systems in maritime environments, designing and optimizing computer vision models for real-time analysis and sensor fusion.
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Job Description:

We are seeking a highly experienced Machine Perception Engineer to lead the development of edge-deployed perception and intelligence systems for maritime environments. This role is core to our mission: enabling vessels to autonomously understand their surroundings through real-time scene analysis, object detection, classification, and tracking. You’ll design and optimize vision models that run efficiently on-device under constrained compute conditions. Your work will involve fusing data from multiple sensors (camera, radar, RF) to enable robust vessel identification, safety features, and anomaly detection in challenging field conditions. The ideal candidate has extensive hands-on experience deploying vision systems in production, especially in edge or low-bandwidth environments, and is comfortable translating applied research into performant, maintainable code.

Key Responsibilities:
  • Lead the design, training, and deployment of computer vision and perception models for tasks such as vessel detection, classification, and tracking.

  • Architect and optimize inference pipelines for real-time performance on edge devices, including GPU-accelerated and mixed-precision inference.

  • Implement and refine algorithms for scene understanding, object segmentation, and environmental awareness using both image and sensor fusion data.

  • Collaborate with hardware and software teams to ensure model compatibility with embedded systems and available compute resources.

  • Develop techniques for edge-case detection, dataset curation, and self-healing model behavior in dynamic, non-ideal environments.

  • Apply active learning, domain adaptation, and synthetic data strategies to improve model robustness and generalization.

  • Work closely with RF and sensor teams to integrate complementary signal data into multimodal classification and detection pipelines.

  • Own model evaluation processes and benchmarking across hardware platforms and field conditions.

  • Maintain best practices for model versioning, traceability, and validation in safety-critical applications.

Qualifications (Preferred):
  • Bachelors, Master’s or PhD in Computer Vision, Machine Learning, Robotics, or related field.

  • 8+ years of experience in applied perception or computer vision, in performance critical applications

  • Proficiency in Python and deep learning frameworks such as PyTorch or TensorFlow.
    Experience with model optimization techniques such as pruning, quantization, or TensorRT deployment.

  • Strong understanding of classical vision (OpenCV) as well as modern deep learning methods.

  • Familiarity with maritime, aerospace, or other harsh-environment sensing applications is a strong plus.

  • Experience with sensor fusion, Kalman filtering, or multi-modal neural networks.

  • Excellent problem-solving, debugging, and software design skills.

  • Strong communication skills, with the ability to lead technical direction and mentor junior engineers.

Work Environment:

  • Flexible working hours with occasional deadlines requiring high availability.

  • Opportunity to work on innovative projects with a global impact.

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