Bangalore, Karnataka, India
Information Technology
Full-Time
Tecblic
Overview
Job Description : Machine Learning Engineer LLM, Agentic AI, Computer Vision, and MLOps
Location : Ahmedabad
Experience : 4 to 6 years
Employment Type : Us :
Responsibilities
Join a forward-thinking team at Tecblic, where innovation meets cutting-edge technology. We specialize in delivering AI-driven solutions that empower businesses to thrive in the digital age. If you're passionate about LLMs, Computer Vision, MLOps, and pushing the boundaries of Agentic AI, wed love to have you on Responsibilities :
Location : Ahmedabad
Experience : 4 to 6 years
Employment Type : Us :
Responsibilities
Join a forward-thinking team at Tecblic, where innovation meets cutting-edge technology. We specialize in delivering AI-driven solutions that empower businesses to thrive in the digital age. If you're passionate about LLMs, Computer Vision, MLOps, and pushing the boundaries of Agentic AI, wed love to have you on Responsibilities :
- Research and Development: Design, develop, and fine-tune machine learning models across LLM, computer vision, and Agentic AI use cases.
- Model Optimization: Fine-tune and optimize pre-trained models, ensuring performance, scalability, and minimal latency.
- Computer Vision: Build and deploy vision models for object detection, classification, OCR, and segmentation.
- Integration: Work closely with software and product teams to integrate models into production-ready applications.
- Data Engineering: Develop robust data pipelines for structured, unstructured (text/image/video), and streaming data.
- Production Deployment: Deploy, monitor, and manage ML models in production using DevOps and MLOps practices.
- Experimentation: Prototype and test new AI approaches such as reinforcement learning, few-shot learning, and generative AI.
- DevOps Collaboration: Collaborate with the DevOps team to ensure CI/CD pipelines, infrastructure-as-code, and scalable deployments are in place.
- Technical Mentorship: Support and mentor junior ML and data :
- Strong Python skills for machine learning and computer vision.
- Hands-on experience with PyTorch, TensorFlow, Hugging Face, Scikit-learn, OpenCV.
- Deep understanding of LLMs (e.g., GPT, BERT, T5) and Computer Vision architectures (e.g., CNNs, Vision Transformers, YOLO, R-CNN).
- Strong knowledge of NLP tasks, image/video processing, and real-time inference.
- Experience in cloud platforms: AWS, GCP, or Azure.
- Familiarity with Docker, Kubernetes, and serverless deployments.
- Proficiency in SQL, Pandas, NumPy, and data wrangling & MLOps Skills :
- Experience with CI/CD tools such as GitHub Actions, GitLab CI, Jenkins, etc.
- Knowledge of Infrastructure as Code (IaC) tools like Terraform, CloudFormation, or Pulumi.
- Familiarity with container orchestration and Kubernetes-based ML model deployment.
- Hands-on experience with ML pipelines and monitoring tools: MLflow, Kubeflow, TFX, or Seldon.
- Understanding of model versioning, model registry, and automated testing/validation in ML workflows.
- Exposure to observability and logging frameworks (e.g., Prometheus, Grafana, ELK Skills (Good to Have) :
- Knowledge of Agentic AI systems and use cases.
- Experience with generative models (e.g., GANs, VAEs) and RL-based architectures.
- Prompt engineering and fine-tuning for LLMs in specialized domains.
- Working with vector databases (e.g., Pinecone, FAISS, Weaviate).
- Distributed data processing using Apache Spark, Skills :
- Strong foundation in mathematics, including linear algebra, probability, and statistics.
- Deep understanding of data structures and algorithms.
- Comfortable handling large-scale datasets, including images, video, and multi-modal Skills :
- Strong analytical and problem-solving mindset.
- Excellent communication skills for cross-functional collaboration.
- Self-motivated, adaptive, and committed to continuous learning
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