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Job Description

Key Skills :


- AI


- Artificial Intelligence


- AI/ML


- Python


- FastAPI


- Machine Learning


- NLP


- LLM


- Docker


- Kubernetes


- AWS


- Microservices


- REST APIs


- Vector Databases


Roles & Responsibilities :


- Design, develop, and deploy AI/ML applications and intelligent solutions.


- Build and maintain scalable pipelines for containerized applications using EKS and microservices architecture.


- Optimize model inference time and operational costs while exposing model inference via REST/gRPC APIs.


- Implement observability, monitoring, and FinOps practices for efficient resource utilization.


- Develop high-quality Python code following best practices such as TDD, concurrency, and multi-threading.


- Develop APIs using FastAPI and integrate AI models into scalable microservices architectures.


- Implement event-driven architectures using message brokers such as Kafka and RabbitMQ.


- Manage containerized applications using Docker, Kubernetes, and Helm.


- Utilize LLM frameworks such as Hugging Face Transformers and LangChain for AI solution development.


- Implement Retrieval-Augmented Generation (RAG) pipelines and vector databases like Qdrant and ChromaDB.


- Optimize model training, serving, caching, and evaluation pipelines using PyTorch/TensorFlow and MLFlow/Airflow.


- Deploy and manage AI solutions on AWS cloud services.


- Ensure secure handling of sensitive data (PII/PHI) with encryption and compliance standards.


- Manage authentication and authorization mechanisms including RBAC.


- Work with SQL and NoSQL databases such as MongoDB, DocDB, and Snowflake.


- Implement logging, monitoring, and observability tools for continuous system performance tracking.


Experience Required :


- 4 to 8 years of experience in AI/ML development and deployment.


- Strong experience in Python programming and AI/ML frameworks.


- Hands-on experience with Machine Learning, NLP, and LLM-based applications.


- Experience in building scalable APIs using FastAPI or similar frameworks.


- Experience with containerization and orchestration tools such as Docker and Kubernetes.


- Knowledge of microservices architecture and event-driven systems.


- Experience with vector databases and RAG architectures is preferred.


- Experience working with cloud platforms, preferably AWS.


- Familiarity with CI/CD pipelines and MLOps practices.


- Strong problem-solving skills and ability to work in agile development environments.

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