Sr. Computer Vision Engineer

Posted Yesterday
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Hiring Remotely in USA
Remote
Senior level
Artificial Intelligence • Computer Vision • Retail • Security
The Role
Design, train, and deploy production computer vision and vision-language models for retail product recognition. Optimize models for edge devices, build data pipelines and annotation workflows, fine-tune open-source VLMs, develop VLA pipelines, mentor engineers, and drive CV infrastructure and MLOps best practices.
Summary Generated by Built In
 
Computer Vision Engineer
 

Panoptyc is seeking an exceptional Senior Computer Vision Engineer to architect and train cutting-edge models for retail object recognition and drive our edge deployment strategy.

 
About the Role

You'll be joining our awesome team of hardware, full-stack and CV engineers developing our next generation computer vision capabilities, building and optimizing models that power real-world retail applications. This role demands someone who can move seamlessly from training custom YOLO architectures to deploying optimized models on edge devices - and from fine-tuning open-source VLMs to building VLA pipelines that reason about and act on what they see.

 
What You'll Do
  • Model Development: Design, train, and iterate on custom object detection models specifically tuned for retail environments, inventory tracking, and product recognition

  • VLM & VLA Integration: Fine-tune and deploy open-source vision-language models (LLaVA, Qwen-VL, InternVL, PaliGemma, etc.) for product understanding, zero-shot classification, and scene reasoning; build vision-language-action pipelines that translate visual understanding into downstream decisions

  • Edge Optimization: Take state-of-the-art models and make them blazingly fast for edge deployment through quantization, pruning, and architectural optimization

  • Dataset Engineering: Build robust data pipelines and annotation workflows to continuously improve model performance on diverse retail scenarios

  • Research & Innovation: Stay ahead of the curve on CV and VLM research, prototype new architectures, and determine what's actually production-ready versus academic noise

  • Technical Leadership: Mentor engineers, establish best practices for model development, and drive technical decisions around our CV infrastructure

     
Required Experience
  • 4+ years of hands-on computer vision engineering, with a proven track record of shipping models to production

  • Deep expertise with YOLO and YOLO-E architectures - you've trained them, tuned them, and know their quirks intimately

  • Hands-on experience with open-source VLMs (LLaVA, Qwen-VL, InternVL, PaliGemma, or similar) - fine-tuning, evaluation, and production deployment

  • Familiarity with VLA frameworks and applying vision-language-action models to real-world perception and decision tasks

  • Edge deployment mastery - experience with TensorRT, ONNX Runtime, or similar frameworks for optimizing models for constrained devices, including quantized VLMs

  • Strong software engineering fundamentals - clean code, version control, CI/CD for ML, and the ability to build maintainable systems

  • Production ML experience - you understand the difference between a Jupyter notebook and a production-grade ML system

Preferred Qualifications
  • Experience developing solutions deployed to the NVIDIA Jetson family of products

  • Experience with retail, inventory management, or similar product-focused CV applications

  • Background with PyTorch and modern training frameworks (Transformers, LitGPT, Unsloth, etc.)

  • Experience running VLM inference efficiently (vLLM, llama.cpp, SGLang, or similar)

  • Familiarity with synthetic data generation and data augmentation techniques

  • Knowledge of model versioning and experiment tracking (MLflow, Weights & Biases, etc.)

  • Publications or open-source contributions in computer vision or multimodal AI

  • Experience with AWS: EC2, ECS, Fargate, S3, Bedrock, SageMaker, etc.

     
Technical Stack

While we value expertise over specific tools, you'll likely work with: PyTorch, YOLO variants, open-source VLMs, TensorRT, ONNX, vLLM, Docker, Kubernetes, and various MLOps tooling.

 

Location: Remote

Panoptyc is building the future of retail intelligence. If you're ready to tackle hard CV and multimodal problems at scale, we want to hear from you.

 
 
 
 

Skills Required

  • 4+ years of hands-on computer vision engineering with production model deployments
  • Deep expertise with YOLO and YOLO-E architectures
  • Hands-on experience fine-tuning and deploying open-source VLMs (e.g., LLaVA, Qwen-VL, InternVL, PaliGemma)
  • Familiarity with vision-language-action (VLA) frameworks and applying VLA models to perception and decision tasks
  • Edge deployment experience using TensorRT, ONNX Runtime, or similar, including quantized VLMs
  • Strong software engineering fundamentals, version control, and CI/CD for ML
  • Production ML experience and ability to build maintainable ML systems (beyond notebooks)
  • Experience developing for NVIDIA Jetson products
  • Background with PyTorch and modern training frameworks (Transformers, LitGPT, Unsloth, etc.)
  • Experience running VLM inference efficiently (vLLM, llama.cpp, SGLang, or similar)
  • Familiarity with synthetic data generation and augmentation techniques
  • Knowledge of model versioning and experiment tracking (MLflow, Weights & Biases)
  • Experience with AWS services (EC2, ECS, Fargate, S3, Bedrock, SageMaker)
  • Publications or open-source contributions in computer vision or multimodal AI
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The Company
HQ: Birmingham, MI
81 Employees
Year Founded: 2019

What We Do

Panoptyc provides AI-driven solutions for retail loss prevention, utilizing machine learning and computer vision to detect theft and protect assets while maintaining user privacy through advanced anonymization techniques.

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