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Vetted Data Analysts in North Carolina

Pre-screened and vetted in North Carolina.

AWSDockerSQLApache AirflowKubernetesModel Monitoring
SA

Sathwik Alavala

Screened

Mid-level Data Scientist specializing in AI/ML, MLOps, and LLM-powered analytics

Charlotte, NC6y exp
Bank of AmericaCampbellsville University

Built and deployed a production LLM-powered document Q&A system enabling natural-language querying of large PDFs, focusing on retrieval quality (overlapped chunking) and low-latency performance (optimized embeddings + vector search). Experienced with scaling ML/LLM workflows using async/batch processing, caching, cloud storage, and orchestration via Apache Airflow with robust testing, monitoring, and failure handling.

A/B TestingAirflowAnomaly DetectionAPI DevelopmentAstraDBAWS+94
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KP

Kavya Paluvai

Screened

Mid-level Data Scientist specializing in fraud detection and healthcare ML

North Carolina, USA4y exp
Wells FargoUniversity of North Carolina at Charlotte

Applied NLP/ML in healthcare and financial services, including fine-tuning BERT on unstructured EHR text and building embedding-based similarity search for clinical concepts. Also redesigned a Wells Fargo fraud detection data pipeline using modular Python + AWS Glue/Step Functions, cutting runtime ~40% with improved monitoring and reliability.

A/B TestingAirflowArtifact ManagementAWSAWS Databricks SQLAWS Glue+117
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JV

Jeevan Vikkurty

Mid-level Generative AI Engineer specializing in LLMs and RAG

Charlotte, NC5y exp
Wells FargoUniversity of North Texas
PythonC++SQLBashJavaC+115
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OV

Oksana Vorobyeva

Mid-level Software Engineer in Test specializing in API and end-to-end automation

Charlotte, NC6y exp
GrinLinguistics University of Nizhny Novgorod
AgileAJAXAndroidAPI TestingArtisan ConsoleAWS+96
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NG

Niharika Govinda

Screened

Junior Machine Learning Engineer specializing in NLP, data pipelines, and LLM workflows

Raleigh, NC2y exp
EcoServantsUniversity of Colorado Boulder

Built and shipped a production LLM-powered decision system that replaced a slow, inconsistent manual review process by turning messy text into structured, auditable outputs behind an API. Demonstrates strong end-to-end ownership of reliability and operations (schema validation, retries/fallbacks, latency/cost controls, monitoring for drift) and a disciplined approach to evaluation and regression testing. Experienced collaborating with non-technical reviewers to define success criteria and deliver interpretable outputs that get adopted.

PythonSQLRMATLABJavaPyTorch+101
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