Source description
About the role
Area(s) of responsibility GenAI App Tech Architect – Azure OpenAI & Azure Cognitive Search
We are looking for an experienced GenAI Architect to design, build, and scale enterprise-grade Generative AI solutions. The ideal candidate will have deep expertise in Azure AI services, Retrieval-Augmented Generation (RAG) architectures, and AI governance, along with the ability to collaborate across backend and frontend teams to deliver production-ready applications.
Responsibilities
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Architect and implement end-to-end GenAI solutions using Azure ecosystem (Azure OpenAI, Cognitive Search, etc.)
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Develop and enforce AI guardrails for safety, compliance, and responsible AI usage
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Build scalable, secure, and high-performance AI systems aligned with enterprise standards
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Implement conversational AI application using NodeJS,Azure OpenAI and Python
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Integrate various AI technologies like OpenAI models, LangChain, Azure Cognitive Services (Cogniitve Search, Indexes,Indexers and APIS etc) to enable sophisticated natural language capabilities
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Implementation of private endpoints across the Azure services leveraged for the application
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Implement schemas, APIs, frameworks and platforms to operationalize AI models and connect them to conversational interfaces
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Implement app logic for conversation workflows, context handling, personalized recommendations, sentiment analysis etc.
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Build and deploy the production application on Azure while meeting security, reliability, and compliance standards
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Create tools and systems for annotating training data, monitoring model performance, and continuously improving the application
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Mentor developers and provide training on conversational AI development best practices
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Build and productionize vector databases for the application on Azure cloud
Requirements
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10-12 years of overall technology experience in core application development
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5+ years experience leading development of AI apps and conversational interfaces
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Hands-on implementation centric knowledge of generative AI tools on Azure cloud
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Deep, hands-on and development proficiency in Python and NodeJS
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Hands-on expertise of SharePoint indexes and data/file structures (Azure SQL)
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Hands-on knowledge of Azure Form Recognizer tools
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Experience with LangChain, Azure OpenAI and Azure Cognitive Search
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Retrieval Augmented Generation (RAG) and RLHF (Reinforcement Learning from Human Feedback) using Python
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Vector databases on Azure cloud using PostgreSQL
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Pinecone, FAISS, Weaviate or ChromaDB
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Prompt Engineering using LangChain or Llama Index
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Knowledge of NLP techniques like transformer networks, embeddings, intent recognition etc.
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Hands-on skills on Embedding and finetuning Azure OpenAI using MLOPS/LLMOPS pipelines
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Good to have - Strong communication, DevOps, and collaboration skills
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