Lead Computer Vision Engineer

Department Icon Data Science Analytics & Machine Learning
149+ Applicants
Posted: 4 months ago
5-10 years
Remote
work from office

Posted: 4 months ago
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Applicants: 152+
Job Description
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Job Description

We are looking for a Technical Lead to architect and deploy end-to-end Computer Vision solutions. You will lead a team of engineers to translate abstract business needs into high-performance, real-time vision pipelines that run on the Edge (NVIDIA Jetson/GPUs) and the Cloud.


Key Responsibilities

  • Technical Leadership: Lead the end-to-end execution of Vision AI projectsfrom algorithm selection and prototyping to production deployment. Mentor junior engineers and set high standards for code quality and fault tolerance.
  • Architect Real-Time Pipelines: Design low-latency camera stream processing pipelines for Object Detection, Tracking, OCR, and Behavior Analysis using state-of-the-art architectures (Transformers, YOLO, etc.).
  • GenAI Integration: Push the boundaries by integrating Generative AI (Vision Language Models / VLMs) into our industrial workflows to provide deeper intelligence.
  • Customer Collaboration: Bridge the gap between "Research" and "Reality." Translate client business requirements into techno-analytic problems and deliver disruptive insights in reasonable timeframes.
  • Infrastructure Collaboration: Work closely with the DevOps team to ensure seamless containerization and orchestration (Docker/Kubernetes) of your models.

Skills & Requirements

  • Core CV & ML: Deep mastery of Python and the Computer Vision ecosystem (PyTorch, OpenCV, NumPy). Strong grasp of Machine Learning / Deep Learning fundamentals.
  • Video Analytics Mastery: Proven experience processing live RTSP/Camera feeds at high FPS. You understand the difference between running a model on a static image vs. a continuous stream.
  • Inference Optimization: You don't just train models; you deploy them. Experience with NVIDIATensorRT,DeepStream, or Triton Inference Server is highly valued.
  • Production Engineering: Ability to write clean, fault-tolerant, modular Python code (not just Jupyter notebooks). Good understanding of data processing pipeline optimization.
  • Hardware Awareness: Deep understanding of CUDA and GPU utilization to squeeze maximum performance out of Edge hardware.

Brownie Points

  • GenAI Experience:

    Looking to get Placed? Try our Placement Guarantee Plan

    Familiarity with Large Language Models (LLMs) or Vision Transformers (ViT).
  • Deployment: Understanding of Docker and Kubernetes (you don't need to be an expert, but you need to know how your code is shipped).
  • MLOps: Experience with model versioning and lifecycle management.

What We Offer

  • Meritocracy: A candid startup culture where the best ideas win.
  • The Playground: Access to the latest NVIDIA Hardware and cutting-edge Generative AI tools.
  • Ownership: Lead a performance-oriented team driven by autonomy and open to experiments.
  • Impact: Design systems for high accuracy and scalability that physically move the global supply chain.

Skills

OpenCVImage ProcessingRTSPComputer VisionDeepStreamPyTorchTriton Inference ServerNVIDIA TensorRTOptimization

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Important dates & deadlines?

Application Deadline

06 Mar 26, 05:09 PM IST

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