GenAI Engineer

Prudent Technologies and Consulting, Inc.

Hyderabad

On-site

INR 300,000 - 600,000

Full time

6 days ago
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Qualifications

  • 3–4 years hands-on experience with Generative AI projects.
  • Bachelor's or Master's degree in CS/AI/Data Science or related field.
  • Strong communication skills to explain AI concepts clearly to technical and non-technical audiences.
  • Goal-oriented with product mindset and ability to deliver measurable business outcomes.

Responsibilities

  • Design end-to-end RAG pipelines with chunking, embeddings, vector stores, hybrid search and re-ranking.
  • Build autonomous multi-agent AI workflows using LangChain, LangGraph, AutoGen, CrewAI, or Semantic Kernel.
  • Model and query knowledge graphs using Neo4j; integrate GraphRAG with LLM workflows.
  • Integrate and fine-tune LLMs using prompts, function calls, structured outputs, and LoRA/QLoRA where applicable.
  • Containerize and deploy GenAI services on AWS, Azure, or GCP; implement monitoring and cost-efficient scaling.
  • Apply guardrails to mitigate hallucinations, prompt injection, bias, and data leakage; contribute to evaluation frameworks.
  • Collaborate with cross-functional teams; document designs and communicate trade-offs clearly.

Skills

Generative AI
RAG design
Agentic AI frameworks
Neo4j & Graph Databases
Python
Cloud Platforms
REST APIs / Async
Data handling (SQL/NoSQL)

Education

Bachelor's or Master's in CS/Data Science/AI

Tools

LangChain
LangGraph
AutoGen
CrewAI
Semantic Kernel
PyTorch
FastAPI
Docker
pgvector

Job description

We are looking for a hands-on Generative AI Engineer to design, build, and deploy production-grade GenAI solutions. In this role, you will develop Retrieval-Augmented Generation (RAG) pipelines, build Agentic AI workflows using modern frameworks, and leverage graph databases such as Neo4j to power knowledge-grounded reasoning. You will collaborate closely with senior engineers, data scientists, and product teams to translate business problems into scalable, reliable AI systems.

Key Responsibilities
  • RAG Pipelines: Design and implement end-to-end Retrieval-Augmented Generation systems - including chunking strategies, embedding models, vector stores, hybrid search, and re-ranking - to deliver accurate, context-grounded LLM responses.
  • Agentic AI Development: Build autonomous and multi-agent AI workflows using frameworks such as LangChain, LangGraph, AutoGen, CrewAI, or Semantic Kernel; implement tool-use, planning, memory, and orchestration patterns.
  • Knowledge Graphs: Model, build, and query knowledge graphs using Neo4j and other Graph Databases; integrate graph-based retrieval (GraphRAG) with LLM pipelines for enhanced reasoning and explainability.
  • LLM Integration: Integrate and fine-tune Large Language Models (LLMs) using prompt engineering, function calling, structured outputs, and parameter-efficient techniques (LoRA/QLoRA) where applicable.
  • Deployment & MLOps: Containerize and deploy GenAI services on AWS, Azure, or GCP; implement monitoring, evaluation, versioning, and cost-efficient scaling for AI workloads.
  • Responsible AI: Apply guardrails to mitigate hallucinations, prompt injection, bias, and data leakage; contribute to evaluation frameworks for model accuracy and safety.
  • Collaboration: Partner with cross-functional teams, document technical designs clearly, and communicate trade-offs effectively with both technical and non-technical stakeholders.
Required Technical Skills
  • Generative AI: Strong hands-on experience building GenAI applications using LLMs (OpenAI GPT, Anthropic Claude, Llama, Mistral, Gemini, etc.); solid grasp of Transformer architectures, embeddings, and prompt engineering.
  • RAG: Proven experience designing RAG pipelines - chunking, embeddings, vector databases (Pinecone, Chroma, Weaviate, Milvus, FAISS, pgvector), hybrid search, and re-ranking.
  • Agentic AI & Tools: Hands-on experience with Agentic AI frameworks and tools such as LangChain, LangGraph, AutoGen, CrewAI, Semantic Kernel, LlamaIndex, or similar; familiarity with MCP and function/tool calling patterns.
  • Neo4j & Graph Databases: Practical experience with Neo4j (Cypher query language), graph data modeling, and integrating Graph DBs into AI/LLM workflows (GraphRAG is a strong plus).
  • Programming: Strong Python skills; experience with frameworks such as PyTorch, TensorFlow, FastAPI, or similar; familiarity with REST APIs and async patterns.
  • Cloud & Infrastructure: Working knowledge of at least one major cloud platform - AWS (Bedrock, SageMaker), Azure (Azure OpenAI, AI Foundry), or GCP (Vertex AI); comfortable with Docker, Git, and CI/CD pipelines.
  • Data Handling: Comfort working with structured and unstructured data, ETL processes, and SQL/NoSQL databases.
Experience & Qualifications
  • Experience: Preferably 3-4 years of hands-on exposure to Generative AI projects.
  • Education: Bachelor's or Master's degree in Computer Science, Data Science, Artificial Intelligence, or a related field.
  • Communication: Good written and verbal communication skills; able to explain complex AI concepts clearly to both technical and non-technical audiences.
  • Problem-Solving: Strong analytical and debugging skills with a product-oriented mindset and a passion for delivering measurable business outcomes.
  • Ownership: Self-driven, collaborative, and able to own features end-to-end from design through deployment.
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