Role Overview
Xpengmotors is hiring a Staff Machine Learning Engineer. This is a full-time role in Santa Clara. Part of Xpengmotors's Lifecycle hiring, posted 2 weeks ago. Full responsibilities, required qualifications, and the apply link are listed in the description below.
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Job description
About the Role
What You’ll Do
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Develop and improve 2D traffic sign detection models for autonomous driving perception systems.
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Analyze TSR-related scenarios and failure cases, including missed detections, false positives, occlusions, small objects, rare signs, region-specific signs, and adverse weather or lighting conditions.
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Prepare, clean, curate, and analyze training and evaluation datasets for TSR model iteration.
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Design and execute model training experiments, including data sampling, augmentation, loss tuning, class imbalance handling, and hard-case mining.
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Build and maintain evaluation pipelines for TSR models, including offline metrics, scenario-based evaluation, regression testing, and error analysis.
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Collaborate with data teams to define mining strategies for long-tail TSR scenarios and improve dataset coverage.
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Optimize models for production deployment, including ONNX / TensorRT / quantization / inference acceleration.
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Work with deployment and platform teams to validate model performance on onboard or edge compute platforms.
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Track model performance across versions and support continuous improvement through data-model-evaluation feedback loops.
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Debug issues across the full stack, including data quality, labeling, model behavior, evaluation mismatch, and deployment consistency.
Basic Qualifications
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Master’s, or PhD degree in Computer Science, Electrical Engineering, Robotics, Computer Vision, Machine Learning, or a related field.
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3-5 years of strong hands-on experience with computer vision models, especially object detection.
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Experience with detection architectures such as YOLO, Faster R-CNN, DETR/Deformable DETR, RT-DETR, RTMDet, or similar models.
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Proficiency in Python and deep learning frameworks such as PyTorch or TensorFlow.
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Solid understanding of object detection training workflows, including dataset preparation, augmentation, loss functions, evaluation metrics, and model debugging.
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Experience with common detection metrics such as mAP, precision/recall, false positive/false negative analysis, and class-level performance breakdown.
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Strong data analysis and problem-solving skills.
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Ability to work cross-functionally with model, data, infrastructure, and deployment teams.
Preferred Qualifications
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Experience in autonomous driving, ADAS, robotics, or safety-critical perception systems.
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Experience with traffic sign recognition, traffic light recognition, road object detection, or small-object detection.
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Familiarity with long-tail scenario mining, hard negative mining, class imbalance handling, and dataset curation.
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Experience with ONNX, TensorRT, model quantization, C++ inference pipelines, CUDA, or edge deployment.
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Experience debugging training-to-deployment consistency issues, including preprocessing mismatch, postprocessing mismatch, quantization accuracy drop, or runtime performance bottlenecks.
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Familiarity with large-scale data pipelines, scenario tagging, or automated data mining workflows.
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Strong engineering discipline in experiment tracking, reproducibility, regression testing, and model version management.
What Success Looks Like
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Improve TSR detection performance across both common and long-tail traffic sign scenarios.
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Build reliable data and evaluation workflows to support fast model iteration.
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Identify and prioritize high-impact failure modes through scenario analysis and data mining.
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Deliver deployable TSR models with strong accuracy, latency, and robust tradeoffs.
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Help establish a scalable data-model-evaluation-deployment loop for production TSR development.
Why Join Us
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Work on production of autonomous driving perception systems with real-world impact.
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Own an important perception task that directly affects driving safety, rule understanding, and product quality.
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Collaborate with strong teams across model development, data, deployment, and vehicle platforms.
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Gain hands-on experience across the full model lifecycle: from data and training to evaluation, optimization, quantization, and onboard deployment.
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A fun, supportive and engaging environment.
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Infrastructures and computational resources to support your work.
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Opportunity to work on cutting edge technologies with the top talents in the field.
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Opportunity to make a significant impact on the transportation revolution by the means of advancing autonomous driving.
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Competitive compensation package.
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Snacks, lunches, dinners, and fun activities.
About Xpengmotors
Xpengmotors
17 other open roles at Xpengmotors on TryApplyNow.
Frequently Asked Questions
How do I apply for the Staff Machine Learning Engineer position at Xpengmotors?
Use the Apply button above to submit your application directly to Xpengmotors. Most applications take less than 5 minutes if your resume and contact details are ready, and you'll be routed to the employer's official application system to finish.
Where is the Staff Machine Learning Engineer position at Xpengmotors located?
This position is based in Santa Clara. Xpengmotors has not indicated remote or hybrid options for this role, so candidates should plan for on-site work.
What does a Staff Machine Learning Engineer at Xpengmotors earn?
Xpengmotors has not disclosed a salary range in this posting. Many employers share specifics later in the interview process; you can also ask during a recruiter screen if compensation transparency is important to you.
When was the Staff Machine Learning Engineer role at Xpengmotors posted?
This role was posted on June 24, 2026 (15 days ago). It's still listed as actively hiring; we re-confirm openings against the source system multiple times per day and remove closed roles.
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