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hirist

Artificial Intelligence/Machine Learning Engineer

Posted on: 28/07/2025

Job Description

Title : AI/ML Engineer

Location : Sector 63, Noida


About the Role :


We are seeking a talented and hands-on AI/ML Engineer with experience in LLM-based architectures, vector search (e.g., Pinecone), and end-to-end model deployment. You'll be working closely with our product and research teams to develop scalable NLP/NLU applications, including RAG pipelines, LLM integrations, and custom model deployments.


Key Responsibilities :


- Design and implement Retrieval-Augmented Generation (RAG) pipelines using LLMs and vector databases like Pinecone.


- Integrate with OpenAI, LLaMA, and Hugging Face models to build conversational AI solutions.


- Work with vector databases (e.g., Pinecone, Weaviate, FAISS) for embedding-based retrieval.


- Fine-tune and serve LLMs (LLaMA, GPT, etc.) locally or via cloud deployments.


- Implement NLP/NLU tasks including summarization, classification, entity extraction, etc.


- Build and deploy ML pipelines using TensorFlow or PyTorch (preferred but not mandatory).


- Perform model evaluations, optimizations, and monitor post-deployment performance.


- Collaborate with backend and DevOps teams to deploy models using Docker, FastAPI, or other modern tools.


Required Skills :


- 3+ years of experience in AI/ML or Data Science roles.


- Strong experience with LLMs (e.g., GPT-4, LLaMA, Falcon).


- Hands-on experience with RAG architectures and embedding pipelines.


- Familiarity with OpenAI APIs, LangChain, or LLM tooling frameworks.


- Working knowledge of vector stores like Pinecone, FAISS, or Weaviate.


- Proficient in Python and libraries like transformers, scikit-learn, spaCy, etc.


- Exposure to model serving & deployment FastAPI, Flask, Docker, TorchServe, etc.


- Familiarity with NLP/ML lifecycle from training to inference and monitoring.


Good to Have :


- Experience with TensorFlow or PyTorch.


- Experience in deploying LLMs locally (LLaMA with llama.cpp or Ollama).


- Experience in managing Hugging Face Spaces, datasets, or model hub.


- MLOps experience : CI/CD, model versioning, cloud deployment.


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