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Senior AI Engineer - Agentic AI

Xander Consulting And Advisory
8 - 14 Years
Hyderabad

Posted on: 23/09/2026

Job Description

Key Responsibilities :


- Design, develop, and deploy AI Agents and Multi-Agent Systems for enterprise use cases.


- Architect agentic AI solutions using frameworks such as LangGraph, LangChain, Semantic Kernel, and Google ADK.


- Design and implement Retrieval-Augmented Generation (RAG) solutions using vector databases and enterprise data sources.


- Develop effective prompt-engineering strategies and implement AI safety and responsible AI practices.


- Design evaluation frameworks to measure agent accuracy, reliability, performance, and safety.


- Implement telemetry, observability, monitoring, and tracing for AI-agent systems.


- Work with MCP tools and A2A protocols to enable agent-to-tool and agent-to-agent interactions.


- Build scalable AI applications using Vertex AI and other GCP services.


- Develop cloud-native applications using GKE, Cloud Run, Kubernetes, microservices, and event-driven architectures.


- Design and develop APIs and backend services using Python and FastAPI.


- Implement CI/CD pipelines and engineering best practices for AI applications.


- Design distributed systems that are scalable, resilient, secure, and highly available.


- Collaborate with architects, data scientists, software engineers, and business stakeholders to translate requirements into production-ready AI solutions.


Required Skills & Experience :


- 814 years of overall technology/software engineering experience.


- Strong hands-on experience with :


i. AI Agents and Multi-Agent Systems


ii. MCP Tools


iii. Retrieval-Augmented Generation (RAG)


iv. Prompt Engineering


v. AI Safety


vi. AI Evaluation Frameworks


vii. Telemetry & Observability


viii. A2A Protocols


AI Platforms & Frameworks :


- Vertex AI


- LangGraph


- LangChain


- Semantic Kernel


- Google ADK


- Vector Databases


Cloud-Native Engineering :


- Strong hands-on experience with Google Cloud Platform (GCP)


- Google Kubernetes Engine (GKE)


- Cloud Run


- Kubernetes


- Microservices architecture


- Event-driven architecture


- Distributed systems


Software Engineering :


- Strong proficiency in Python


- FastAPI and API development


- CI/CD and DevOps practices


- Strong understanding of system design and scalable architecture


- Experience designing production-grade, resilient, and secure applications


Preferred Candidate Profile :


- Strong understanding of enterprise GenAI and Agentic AI architecture.


- Experience taking AI-agent solutions from proof of concept to production.


- Strong architectural and system-design capabilities.


- Experience with enterprise-scale cloud-native applications.


- Strong problem-solving, communication, and cross-functional collaboration skills.


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