Ajith Guttikonda
Data Engineer @ 7-Eleven
United States
Frisco
Retail
Large Language Model Operations (LLMOps), Azure SQL, aws, Large Language Models (LLM), Gen Ai, Amazon Web Services (AWS), AWS Glue, AWS Lambda, Microsoft Power BI, Snowflake, Amazon Redshift, ETL Tools, Python (Programming Language), Data Loading, Cloud Infrastructure, Microsoft Azure, SQL, Extract, Transform, Load (ETL)
Experience

Data Engineer
Irving, Texas, United States
At 7-Eleven, I designed and deployed an end-to-end Azure Data Lake integrated with Snowflake to centralize sales, supply chain, and customer data. I built real-time ingestion pipelines using Event Hubs, Kafka, and Databricks that processed over two million daily transactions and implemented Retrieval-Augmented Generation (RAG) workflows with Azure OpenAI and LangChain to summarize customer feedback and generate actionable sentiment insights. I also automated metadata tagging and documentation for 50K+ datasets using LLMs, improving discoverability and compliance across the data ecosystem.

Data Engineer
Columbus, Ohio, United States
During my time at U.S. Bank, I led the migration of on-prem data warehouses to Azure Data Lake and Snowflake, consolidating 15+ enterprise banking data sources. I built batch and streaming pipelines using Azure Data Factory, Event Hubs, and PySpark to process over 10TB of data daily and implemented a GenAI-powered data quality assistant with Azure OpenAI and LangChain for anomaly detection and intelligent query generation. I also delivered a Snowflake-based Customer 360 platform that enabled personalized banking insights, fraud detection, and regulatory reporting while automating CI/CD deployments using Terraform and Azure DevOps.

AWS Data Warehouse Engineer
Hyderabad, Telangana, India
Data Engineer specializing in building secure, HIPAA-compliant healthcare data platforms on AWS. Experienced in centralizing patient records, appointment data, and digital health telemetry into S3-based data lakes, enabling real-time insights for doctors and administrators. Skilled in designing ETL/ELT pipelines with AWS Glue, Lambda, and Python, building streaming solutions with Kinesis, modeling datasets in Redshift and Snowflake, and delivering self-service dashboards in Power BI/QuickSight. Automated CI/CD and infrastructure with Terraform and CodePipeline, improving efficiency and data freshness from 24 hrs to under 1 hr. Tech Stack: AWS S3, Glue, Lambda, Kinesis, Redshift, Snowflake, API Gateway, RDS, Terraform, CodePipeline, Python, SQL, Power BI, QuickSight
Ajith Guttikonda's Contact Information
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