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Job Description & How to Apply Below
HCLTech is hiring Vision AI Engineer for Noida/Chennai location.
About HCLTech:
HCLTech is a global technology company, home to more than 218,000 people across 59 countries, delivering industry-leading capabilities centered around digital, engineering, cloud and AI, powered by a broad portfolio of technology services and products. We work with clients across all major verticals, providing industry solutions for Financial Services, Manufacturing, Life Sciences and Healthcare, Technology and Services, Telecom and Media, Retail and CPG, and Public Services.
Consolidated revenues as of 12 months ending September 2024 totaled $13.7 billion. To learn how we can supercharge progress for you, visit
The dedicated business unit – “AIoT & Industrial AI” leads the Industrial AI and (A)
IoT Business end-to-end for HCL Technologies including overall product direction, new business models, ecosystem and pioneer customer engagements in partnership with Engineering and Application Services. We have a unique opportunity in the area of Industrial AI & IoT platform and services where HCL Technologies can lead business model transformations for customers.
Job Description:
Overall
Experience:
5 to 10 yrs
Location:
Noida/Chennai
Notice Period:
Immediate/30 days
Role Overview
We are seeking a Senior Computer Vision Developer to design, build, and deploy vision-based AI solutions for real-world applications. The role requires deep hands-on experience with image/video analytics, deep learning model development, optimization, and deployment. You will work closely with AI Architects and data engineers to deliver high-performance, production-grade vision systems.
Experience Required
- 5–8 years of experience in AI/ML engineering, with 3+ years specialized in Computer Vision.
- Hands-on deployment of vision models in production environments (edge or cloud).
- Proven experience in optimizing models for real-time inference.
- Strong track record of building vision AI solutions for real-world use cases (retail, healthcare, manufacturing, autonomous systems, surveillance, etc.).
Key Responsibilities
- Model Development & Training
- Implement and fine-tune state-of-the-art computer vision models for object detection, classification, segmentation, OCR, pose estimation, and video analytics.
- Apply transfer learning, self-supervised learning, and multimodal fusion to accelerate development.
- Experiment with generative vision models (GANs, Diffusion Models, Control Net) for synthetic data augmentation and creative tasks.
- Vision System Engineering
- Develop and optimize vision pipelines from raw data preprocessing → training → inference → deployment.
- Build real-time vision systems for video streams, edge devices, and cloud platforms.
- Implement OCR and document AI for text extraction, document classification, and layout understanding.
- Integrate vision models into enterprise applications via REST/gRPC APIs or microservices.
- Optimization & Deployment
- Optimize models for low-latency, high-throughput inference using ONNX, Tensor
RT, OpenVINO, CoreML.
- Deploy models on cloud (AWS/GCP/Azure) and edge platforms (NVIDIA Jetson, Coral, iOS/Android).
- Benchmark models for accuracy vs performance trade-offs across hardware accelerators.
- Data & Experimentation
- Work with large-scale datasets (structured/unstructured, multimodal).
- Implement data augmentation, annotation pipelines, and synthetic data generation.
- Conduct rigorous experimentation and maintain reproducible ML workflows.
Required
Skills & Qualifications
- Programming:
Expert in Python; strong experience with C++ for performance-critical components.
- Deep Learning Frameworks:
PyTorch, Tensor Flow, Keras.
- Computer Vision Expertise:
- Detection & Segmentation: YOLO (v5–v8), Faster/Mask R-CNN, Retina Net, Detectron2, MM Detection, Segment Anything.
- Vision Transformers:
ViT, Swin, DeiT, Conv Ne Xt , BEiT.
- OCR & Document AI:
Tesseract, Paddle
OCR, TrOCR, Layout
LM/Donut.
- Video Understanding:
Slow Fast, Time Sformer, action recognition models.
- 3D Vision:
Point Net, Point Net++, NeRF, depth estimation.
- Generative AI for Vision:
Stable Diffusion, Style
GAN, Dream Booth, Control Net.
- MLOps Tools: MLflow, Weights & Biases, DVC, Kubeflow.
- Optimization Tools: ONNX Runtime, Tensor
RT, OpenVINO, CoreML, quantization/pruning frameworks.
- Deployment:
Docker, Kubernetes, Flask/FastAPI, Triton Inference Server.
- Data Tools:
OpenCV, Albumentations, Label Studio, Fifty One.
Interested candidates, kindly share their resume on pa with below details:
Overall
Experience:
Relevant Exp with Vision AI:
Notice Period:
Current and Expected CTC:
Current and Preferred
Location:
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