Robotics Engineer, Perception

Posted 3 Days Ago
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Austin, TX, USA
In-Office
Mid level
Artificial Intelligence • Information Technology • Robotics • Automation
The Role
Develop, train, evaluate, and deploy instance segmentation and detection models to improve box detection and singulation. Build automated dataset curation and labeling pipelines, own benchmarking and regression frameworks, optimize models for real-time edge inference with TensorRT and quantization, debug production failures, and collaborate with perception and planning teams on integration and calibration.
Summary Generated by Built In
Join Contoro Robotics – Revolutionizing Warehouse Automation with Cutting-Edge Robotics

At Contoro Robotics, we're on a mission to solve labor challenges through advanced robotic solutions. Headquartered in Austin, TX, our fast-growing startup is transforming the supply chain industry with our flagship warehouse automation technology. Our team is made up of top-tier experts in robotics, AI, and logistics, working together to push the boundaries of automation.

We’re looking for talented and ambitious individuals to join us on this journey—helping shape the future of robotics while growing alongside a world-class team. If you're passionate about innovation, problem-solving, and making a real-world impact, we want to hear from you!

About Contoro

Contoro Robotics is an Austin based startup focused on warehouse automation. We design a state-of-the-art autonomous truck unloading system capable of lifting boxes over 60 lbs.

The Role

We are hiring a robotics engineer to maximize the accuracy of our box detection and singulation. You will own the machine learning pipeline that turns raw sensor data into reliable box detections - model training, dataset curation, evaluation, and edge deployment - working alongside our perception engineers to push detection and singulation accuracy across the full range of box sizes and container conditions we see in production. These models run in production across a fleet of active robots, and their accuracy directly drives unloading throughput.

Responsibilities
  • Train, evaluate, and deploy instance segmentation and detection models that improve box detection and singulation accuracy, including for small, occluded, deformed, and tightly-packed boxes

  • Build and maintain automated dataset curation and ground-truth generation pipelines, including foundation-model-assisted labeling (e.g., SAM) to scale training data

  • Own a deterministic benchmarking and regression framework that evaluates model performance across real and simulated datasets, stratified by box size, container type, and failure mode

  • Optimize models for real-time inference on edge hardware using TensorRT and quantization, balancing accuracy against latency and memory budgets

  • Debug and resolve production detection failures through log analysis, failure-case review, and targeted retraining

  • Collaborate with perception engineers on calibration, localization, and the interface between detections and downstream planning

  • Participate in design reviews and contribute to module-level technical decisions

Qualifications
  • B.S. or M.S. in Computer Science, Robotics, Electrical Engineering, or a related field

  • 3+ years of professional experience developing and deploying computer vision / ML models for real-world systems

  • Proficiency in Python and PyTorch in a production environment; working knowledge of C++

  • Hands-on experience with instance segmentation or object detection models (e.g., Mask R-CNN, Detectron2, YOLO, SAM)

  • Experience building dataset curation, labeling, or evaluation pipelines

  • Experience deploying models to edge hardware (NVIDIA Jetson or similar) with TensorRT or comparable inference optimization

  • Strong debugging skills and the ability to diagnose model and pipeline failures in production

  • Familiarity with Linux-based development environments and ROS / ROS2

Preferred Qualifications
  • Experience with 3D perception and point cloud processing (PCL, Open3D) alongside 2D detection

  • Experience with multi-sensor (camera + LiDAR) calibration and synchronized data pipelines

  • Experience with stratified model evaluation and regression testing for ML systems

  • Familiarity with Docker-based deployment and cloud-based logging/monitoring

  • Prior work in warehouse automation, logistics, or pick-and-place applications

Skills Required

  • B.S. or M.S. in Computer Science, Robotics, Electrical Engineering, or related field
  • 3+ years developing and deploying computer vision / ML models for real-world systems
  • Proficiency in Python and PyTorch in a production environment
  • Working knowledge of C++
  • Hands-on experience with instance segmentation or object detection models (e.g., Mask R-CNN, Detectron2, YOLO, SAM)
  • Experience building dataset curation, labeling, or evaluation pipelines
  • Experience deploying models to edge hardware (NVIDIA Jetson or similar) with TensorRT or comparable inference optimization
  • Strong debugging skills and ability to diagnose model and pipeline failures in production
  • Familiarity with Linux-based development environments and ROS / ROS2
  • Experience with 3D perception and point cloud processing (PCL, Open3D)
  • Experience with multi-sensor (camera + LiDAR) calibration and synchronized data pipelines
  • Experience with stratified model evaluation and regression testing for ML systems
  • Familiarity with Docker-based deployment and cloud-based logging/monitoring
  • Prior work in warehouse automation, logistics, or pick-and-place applications
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The Company
HQ: Austin, Texas
35 Employees
Year Founded: 2022

What We Do

Contoro Robotics is an Austin-based robotics startup that is revolutionizing industrial automation with AI-powered robots, focused on automating the unloading of floor-loaded trailer and shipping containers from trucks. Their pioneering human-in-the-loop (HITL) model ensures over 99% success in real-world applications, bridging the gap between AI limitations and the commercial viability of advanced robotics solutions.

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