Computer Vision Engineer/ Lead
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Computer Vision Engineer/ Lead

Date Posted
26 July 2026
Location
Positions
1
Employment Information
₹800,000 ₹1,800,000
Job Level
Lead
Open Positions
1
Location
Bangalore
Address
Bengaluru, India
Experience
7+ Years
Functional Area
Technology
Job Description

We are seeking a highly skilled Computer Vision Engineer with hands-on experience in developing and deploying deep learning models for real-time image and video analytics. The ideal candidate will have a strong background in computer vision, deep learning frameworks, and edge deployment technologies.


Computer Vision Specialists with hands-on experience in:

  • Python, PyTorch, TensorFlow
    • CV/ML/DL model development
    • Object detection & recognition, Action recognition
    • NVIDIA technologies
    • MLOps, Edge deployment

Roles & responsibilities-


  • Design, train, and optimize deep learning models for computer vision tasks such as object detection, image recognition, segmentation, and video analytics.
    • Lead large-scale real-time implementations involving 100+ video streams.
    • Fine-tune models like CNNs and Vision Transformers using frameworks such as TensorFlow, PyTorch, and ONNX.
    • Build and deploy inference pipelines using NVIDIA technologies including NGC models, TAO Toolkit, DeepStream Metropolis, and Triton Server.
    • Apply pre- and post-processing techniques to enhance model performance and evaluation.
    • Develop and implement multi-object tracking algorithms across multiple camera feeds., Perform camera calibration and extract regions of interest (ROI), action recognition using temporal analysis techniques.
    • Develop models for feature extraction and come up with strategies for latent space analysis and manipulation of the data.
    • Proficiency in writing complex SQL queries, familiarity with NoSQL or Graph Databases (Neo4j) is an advantage.
    • Knowledge of infrastructure as code tools (e.g., Terraform, Ansible) is an advantage.
    • Proficiency with containerization technologies (Docker) and orchestration tools (Kubernetes) is an advantage.
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