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Senior Robot Perception Engineer - Visual Inspection/MLOps✓ Verified
Bright Machines
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Job ✓ 100% verified

Senior Robot Perception Engineer - Visual Inspection/MLOps

Bright Machines
⌖ San Francisco, San Francisco, California, United States ▣ Full time Exempt Posted 3 days ago
CountryUnited States
Job typeFull time Exempt
Work / event modeSee source
DeadlineNot specified

About this job

RETHINK MANUFACTURING  

Responsibilities & complete job details

RETHINK MANUFACTURING

The only way to ignite change is to build the best team. At Bright Machines®, we’re innovators and experts in our craft who have joined together to manufacture the AI and data center infrastructure at the edge. We believe unifying software, intelligent automation, and data is the answer to delivering quality and flexibility at scale. We deliver products to meet the demands of today while continuously investing in our Bright Factory model to take advantage of what comes next.   Working with us means you’ll have the opportunity to make lasting, impactful changes for our company and our customers. If you’re ready to apply your exceptional skills to a brighter way of manufacturing AI infrastructure, we’d love to speak with you.

ABOUT THE ROLE As a senior Robot Perception Engineer on the Smart Robotics team at Bright Machines, you will be a hands-on senior contributor responsible for productizing visual inspection solutions for our automation platform. You will own the full pipeline—from algorithm development to production deployment—turning prototype inspection capabilities into reliable, high-throughput features that operate at scale across our automation lines. In this role, you will develop and optimize computer vision and deep learning models for defect detection, classification, and visual validation. You will collaborate closely with cross-functional teams, including Mechanical Engineering and Manufacturing Operations, to design end-to-end inspection solutions that deliver consistent, accurate results under real-world factory conditions. Additionally, you will have the opportunity to shape the inspection product roadmap and drive the adoption of cutting-edge machine learning techniques in an industrial setting.

Develop and optimize visual inspection algorithms for defect detection, anomaly detection, classification, and quality validation using deep learning

Optimize model inference for GPU deployment, leveraging CUDA, TensorRT, and related acceleration frameworks

Collaborate with Mechanical engineers to design illumination setups that maximize inspection accuracy and robustness

Build and maintain data pipelines for model training, evaluation, and continuous improvement

Partner with platform team to establish MLOps practices for model versioning, experiment tracking, automated retraining, and production model monitoring

Harden inspection solutions for production reliability, including monitoring, alerting, and graceful degradation

Work with service engineering and field teams to deploy inspection solutions and support customer rollouts

Define metrics and benchmarks to measure inspection accuracy, throughput, and reliability

MS or PhD in Computer Science, Electrical Engineering, or a related field, or the equivalent in experience with evidence of exceptional ability.

5+ years of relevant experience in computer vision and/or machine learning

Strong programming skills in Python

Deep experience with PyTorch for model development and training

Experience optimizing ML models for GPU inference in production environments

Track record of shipping ML/CV models from prototype to production

Experience with image acquisition, camera systems, and sensor integration

Knowledge of lighting and optics for machine vision (diffuse/directional illumination, lens and filters)

Experience with industrial camera systems and standards (GigE Vision, GenICam, CoaXPress)

C/C++ experience for performance-critical components

Experience with MLOps tooling (MLflow, Weights & Biases, Kubeflow, or similar)

Experience with data annotation, labeling workflows, and active learning strategies

Experience with ROS2

Understanding of manufacturing processes and quality control methodologies

Publications or patents in computer vision, deep learning, or related fields

About Bright Machines

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