Applied Machine Learning Engineer & Computer Vision
Job in
Arlington, Tarrant County, Texas, 76004, USA
Listed on 2026-10-08
Listing for:
Motion Recruitment
Full Time
position Listed on 2026-10-08
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Scientist
Job Description & How to Apply Below
This is a highly hands-on position where you’ll own the full ML lifecycle, including data curation and annotation, model training and evaluation, performance optimization, and deployment to edge and embedded platforms. You’ll work closely with software and systems engineers to ensure models perform reliably in challenging real-world environments where accuracy, latency, and compute limitations all matter.
What You’ll DoDevelop, train, and fine-tune object detection models using architectures such as YOLO, DETR, Faster R-CNN, or similar approaches.
Build and improve multi-object tracking pipelines using frameworks and techniques such as SORT, DeepSORT, Byte Track, or comparable methods.
Evaluate model performance by analyzing metrics, identifying failure cases, and determining where improvements can be made across both the model and underlying data.
Own the end-to-end data and model pipeline, including reviewing raw data, coordinating annotation efforts, curating datasets, implementing augmentation strategies, training models, and validating results.
Optimize deep learning models for edge and resource-constrained hardware, balancing inference speed, accuracy, memory, and compute limitations.
Utilize technologies such as TensorRT, ONNX, quantization, and pruning to improve model performance for production environments.
Collaborate with software and systems engineering teams to integrate computer vision models into broader production systems.
Work with imagery across different sensor modalities, including electro-optical, infrared, thermal, and other imaging sources.
Continuously improve deployed computer vision systems based on real-world performance and new datasets.
What We’re Looking For5+ years of professional experience in applied machine learning, computer vision, or a related technical discipline.
Bachelor’s degree in Computer Science, Electrical Engineering, or a similar technical field. A Master’s degree or PhD is highly valued.
Proven experience developing and deploying object detection models in production environments, rather than exclusively academic or research-based work.
Strong programming skills in Python with hands-on experience using PyTorch or another modern deep learning framework.
Strong understanding of computer vision datasets, annotation quality, training behavior, and evaluation metrics.
Ability to diagnose why a model is underperforming and determine whether improvements need to come from the model architecture, training process, dataset, annotations, or other factors.
Experience managing the complete ML development lifecycle, including data preparation, annotation, training, experimentation, evaluation, optimization, and deployment.
Hands-on experience optimizing ML models for edge, embedded, or compute-constrained environments.
Familiarity with technologies such as TensorRT, ONNX, model quantization, and other inference optimization techniques.
Practical understanding of multi-object tracking with experience implementing or working with tracking algorithms.
Ability to understand current computer vision research and translate relevant techniques into practical improvements for production systems.
U.S. citizenship is required (must be able to obtain a clearance).Nice to Have Strong development experience with C++ or Rust, particularly for production ML…
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