Agentic AI Engineer

CirrusLabs

Bengaluru

On-site

INR 1,500,000 - 1,900,000

Full time

14 days+

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Job summary

CirrusLabs is seeking an AI Engineer specializing in Agentic AI systems and cloud-native deployment in Bengaluru, India. The role focuses on building intelligent, autonomous systems using LLMs, RAG architectures, and MCP for scalable, production-ready implementations.

You will work with Python, FastAPI, Flask, and modern backend tools to design and deploy multi-agent workflows, orchestration, and efficient retrieval systems across AWS/Azure/GCP environments.

Qualifications

  • Strong proficiency in Python and modern backend frameworks (FastAPI, Flask, etc.)
  • Hands-on experience with LLM frameworks such as LangChain, LlamaIndex, or similar
  • Strong understanding of RAG architectures, embeddings, chunking, and retrieval strategies
  • Experience with vector databases (Pinecone, Weaviate, FAISS, Chroma, etc.)
  • Experience building agentic workflows (tool use, memory, planning, orchestration)
  • Familiarity with MCP (Model Context Protocol) or similar tool-interaction paradigms
  • Experience deploying AI applications on cloud platforms (AWS/Azure/GCP)
  • Strong knowledge of Docker, Kubernetes, and microservices architecture
  • Experience designing and consuming REST APIs / async systems

Responsibilities

  • Design and build Agentic AI systems capable of planning, reasoning, and tool usage
  • Develop and optimize RAG (Retrieval-Augmented Generation) pipelines for enterprise use cases
  • Implement and integrate Model Context Protocol (MCP) or similar frameworks for tool orchestration
  • Build multi-agent workflows and autonomous decision-making systems
  • Deploy AI applications on cloud platforms (AWS, Azure, GCP) with scalability and reliability
  • Develop APIs and services to integrate LLM-powered features into products
  • Work with vector databases and retrieval systems for efficient knowledge access
  • Optimize latency, cost, and performance of LLM-based applications
  • Implement observability, monitoring, and evaluation frameworks for AI systems
  • Collaborate with product and engineering teams to deliver production-grade AI solutions

Skills

Python
FastAPI
Flask
LangChain
LlamaIndex
Vector databases
MCP
Docker
Kubernetes
REST APIs

Tools

LangChain
LlamaIndex
Pinecone
Weaviate
FAISS
Chroma

Job description

Role Summary: We are looking for an AI Engineer specializing in Agentic AI systems and cloud-native deployment. This role focuses on building intelligent, autonomous systems using LLMs, RAG architectures, and emerging protocols like MCP, with an emphasis on scalable, production-ready implementations.

  • Python
  • FastAPI, Flask
Key Responsibilities:
  • Design and build Agentic AI systems capable of planning, reasoning, and tool usage
  • Develop and optimize RAG (Retrieval-Augmented Generation) pipelines for enterprise use cases
  • Implement and integrate Model Context Protocol (MCP) or similar frameworks for tool orchestration
  • Build multi-agent workflows and autonomous decision-making systems
  • Deploy AI applications on cloud platforms (AWS, Azure, GCP) with scalability and reliability
  • Develop APIs and services to integrate LLM-powered features into products
  • Work with vector databases and retrieval systems for efficient knowledge access
  • Optimize latency, cost, and performance of LLM-based applications
  • Implement observability, monitoring, and evaluation frameworks for AI systems
  • Collaborate with product and engineering teams to deliver production-grade AI solutions
Required Skills:
  • Strong proficiency in Python and modern backend frameworks (FastAPI, Flask, etc.)
  • Hands‑on experience with LLM frameworks such as LangChain, LlamaIndex, or similar
  • Strong understanding of RAG architectures, embeddings, chunking, and retrieval strategies
  • Experience with vector databases (Pinecone, Weaviate, FAISS, Chroma, etc.)
  • Experience building agentic workflows (tool use, memory, planning, orchestration)
  • Familiarity with MCP (Model Context Protocol) or similar tool-interaction paradigms
  • Experience deploying AI applications on cloud platforms (AWS/Azure/GCP)
  • Strong knowledge of Docker, Kubernetes, and microservices architecture
  • Experience designing and consuming REST APIs / async systems
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