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Job Description

Role Summary

We are seeking an experienced AI Engineer to design, develop, and deploy enterprise-grade AI and Agentic AI solutions. The ideal candidate should have strong expertise in AWS Bedrock Agents, AgentCore, LangGraph/LangChain, RAG architectures, vector retrieval systems, and AI-powered data pipelines. The role involves building intelligent agent workflows, AI assistants, Text-to-SQL solutions, and scalable GenAI applications.

Key Responsibilities

  • Design and develop Agentic AI and Generative AI solutions using AWS-native AI services.
  • Build and orchestrate AI agents using AWS Bedrock Agents and AgentCore .
  • Develop complex agent workflows using LangGraph and LangChain .
  • Implement RAG (Retrieval-Augmented Generation) solutions leveraging vector databases, embeddings, reranking, and enterprise knowledge bases.
  • Design and optimize Text-to-SQL engines for natural language-driven analytics and reporting.
  • Build scalable AI data pipelines using PySpark, AWS Lambda, and Amazon Redshift .
  • Implement semantic caching mechanisms to improve AI application performance and reduce inference costs.
  • Integrate AI solutions with enterprise applications and data platforms.
  • Collaborate with business and technology stakeholders to define AI use cases and deliver production-ready solutions.
  • Ensure AI systems are secure, scalable, reliable, and compliant with organizational standards.

Mandatory Technical Skills

  • Strong experience with AWS Bedrock Agents .
  • Hands-on expertise in AgentCore (AWS-native agent orchestration and action groups).
  • Experience with LangGraph and LangChain for agent orchestration and workflow management.
  • Strong understanding of RAG architectures , vector retrieval, embeddings, knowledge bases, and reranking techniques.
  • Experience developing Text-to-SQL solutions.
  • Proficiency in Python and AI application development.
  • Hands-on experience with PySpark, AWS Lambda, and Amazon Redshift .
  • Experience implementing semantic caching strategies for GenAI applications.
  • Strong knowledge of REST API integrations and microservices architecture.

Good-to-Have Skills

  • Experience with Multi-Agent Architectures .
  • Knowledge of Contextual Retrieval techniques.
  • Experience implementing AI Guardrails and Responsible AI controls.
  • Knowledge of PII Detection and Data Masking frameworks.
  • Experience with FastAPI for AI service deployment.
  • Exposure to enterprise API integrations and AI observability tools.

Preferred Qualifications

  • Bachelor's or Master's degree in Computer Science, Information Technology, Artificial Intelligence, or a related field.
  • Experience in Banking, Financial Services, or Enterprise Digital Transformation projects.
  • AWS AI/ML certifications will be an added advantage.

Preferred Profile

  • 4+ years of software engineering experience with at least 2 years of hands-on experience in AI/GenAI development.
  • Strong problem-solving and analytical skills.
  • Experience delivering production-grade AI solutions at enterprise scale.

More Info

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Key Skills

LangChain

Text-to-SQL solutions

AgentCore

REST API integrations

LangGraph

microservices architecture

vector retrieval systems

RAG architectures

AWS Bedrock Agents

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