GenAI/DevOps Expert | AWS Certified | LangChain & Vector Database Specialist
I'm a highly skilled GenAI/DevOps Expert with extensive experience in building and managing AI-driven applications, specializing in AWS, LangChain, AIOps, and Vector Databases. Currently working at Neo007, I lead the development of real-time credit card fraud detection systems using graph-based analysis and generative AI.
My expertise spans across multiple domains including:
With a background in both AI engineering and DevOps, I excel at bridging the gap between cutting-edge AI research and production-ready systems that deliver real business value.
At Neo4j, I designed and implemented a groundbreaking graph-based system for identifying complex fraud patterns in financial transactions. By leveraging the power of graph algorithms and integrating conversational AI interfaces, I created a solution that dramatically improved fraud detection capabilities.
My approach combined graph database technology with machine learning algorithms to identify suspicious patterns in transaction networks. By implementing a RASA-powered conversational interface, I enabled fraud analysts to investigate potential fraud cases through natural language queries, significantly reducing investigation time.
A comprehensive customer support solution leveraging RAG (Retrieval-Augmented Generation) and vector search to provide accurate, context-aware responses to customer inquiries.
An automated platform for monitoring ML model performance, detecting drift, and implementing automated remediation strategies to ensure consistent model quality.
A scalable multi-modal generative AI application capable of processing and generating content across text, images, and structured data with a distributed vector database.
A comprehensive fraud detection platform combining real-time transaction monitoring, graph-based pattern recognition, and conversational AI interfaces for fraud analysts, with continuous improvement through MLOps.
A specialized conversational interface enabling fraud analysts to investigate suspicious transactions through natural language queries, with RAG-powered knowledge retrieval and real-time transaction analysis.
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