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Gen AI - Senior Engineer

IRIS SOFTWARE TECHNOLOGIES PRIVATE LIMITED
Posted on
IRIS SOFTWARE TECHNOLOGIES PRIVATE LIMITED logo

Experience
3 - 7 yrs
Job Location
Noida, India
Vacancy
1
Designation
Senior Artificial Intelligence Engineer
Job Type
Not specified

Job Description

Gen AI - Senior Engineer

Location: Noida

Company: Iris Software

Job Description

Mandatory Skills:

  • Advanced GenAI Agentic Framework Concepts
  • Cloud Application Integration Deployment
  • Python
  • Azure OpenAI Service
  • Agentic AI Systems
  • AI Agents Tool Calling
  • LangChain
Key Responsibilities
  • Design and develop enterprise Generative AI solutions using Amazon Bedrock, Azure OpenAI Service, Azure AI Foundry, Grog, or AI Search Index platforms.
  • Define AI solution architectures and implementation approaches aligned with business and technical objectives.
  • Design and implement Retrieval-Augmented Generation (RAG), Graph RAG, and Agentic AI architectures for enterprise use cases.
  • Lead development of intelligent AI agents, tool-calling workflows, and autonomous task execution frameworks.
  • Design and implement multi-agent orchestration solutions using frameworks such as LangGraph and evaluate emerging frameworks such as AutoGen or CrewAI where appropriate.
  • Design and optimize prompt strategies, retrieval mechanisms, context orchestration, and response generation frameworks.
  • Design prompt engineering pipelines, vector database integration, semantic search solutions, and Retrieval-Augmented Generation architectures supporting enterprise AI applications.
  • Design and implement workflows using LangChain or LangGraph to support scalable AI application development.
  • Design scalable AI engineering architectures incorporating authentication, authorization, asynchronous processing, scheduling, multithreading, API governance, and enterprise deployment best practices.
  • Lead fine-tuning and model customization initiatives to improve domain-specific AI performance.
  • Define AI integration patterns and deployment approaches for enterprise application ecosystems.
  • Design cloud-native AI integration patterns supporting enterprise APIs, databases, messaging platforms, and event-driven architectures.
  • Establish evaluation frameworks for AI response quality, reliability, relevance, and consistency.
  • Design Human-in-the-Loop (HITL) workflows and evaluation mechanisms to improve AI quality, governance, and business reliability.
  • Review AI solution designs to ensure adherence to engineering standards, scalability, maintainability, and responsible AI practices.
  • Troubleshoot complex AI workflow, retrieval, orchestration, and model behavior challenges through detailed root cause analysis.
  • Mentor team members on GenAI frameworks, RAG architectures, agentic systems, and AI engineering best practices.
  • Drive continuous improvement initiatives focused on AI solution quality, innovation, and operational effectiveness.
Behavioral Competencies
  • Demonstrates strong ownership while driving AI engineering excellence.
  • Collaborate effectively with various teams and business stakeholders to ensure smooth delivery.
  • Promotes innovation and quality-focused engineering through proactive experimentation and continuous improvement.
  • Applies strong analytical thinking to evaluate complex AI, retrieval, and orchestration challenges.
  • Demonstrates adaptability while managing evolving AI technologies, frameworks, and business requirements.
  • Communicates effectively regarding AI solution design, risks, dependencies, assumptions, and improvement opportunities.
  • Maintains high attention to detail across AI architecture, prompt design, workflow implementation, testing, and deployment activities.
  • Encourages continuous improvement in AI engineering practices, framework adoption, and solution effectiveness.
  • Promotes secure, scalable, and responsible AI engineering practices while balancing innovation, governance, and business objectives.
  • Supports knowledge sharing and mentoring to strengthen team capabilities.
  • Balances innovation, scalability, reliability, and business priorities while driving delivery excellence.
Mandatory Competencies
  • Data AI - GEN AI - Advanced GenAI Agentic Framework Concepts
  • Data AI - GEN AI - Cloud Application Integration Deployment
  • Data AI - GEN AI - Python
  • Data AI - GEN AI - NumPy
  • Data AI - GEN AI - Pandas
  • Data AI - GEN AI - Fine tuning Model Customization / AI Agents Tool Calling
  • Data AI - GEN AI - Retrieval Augmented Generation (RAG) / Graph RAG / Agentic AI Systems
  • Data AI - GEN AI - Workflow Agentic Frameworks (LangChain / LangGraph)
  • Data AI - GEN AI - Prompt Engineering / Vector Databases

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