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Vetted AI & Machine Learning Professionals in the Chicago Metro

Pre-screened and vetted in the Chicago Metro.

PythonSQLTensorFlowDockerPyTorchGit
YW

Yishi Wang

Screened

Junior Machine Learning & Data Science professional specializing in LLMs and analytics

Chicago, IL3y exp
MintelNorthwestern University

Amazon internship experience building production GenAI analytics for the returns organization: a multi-agent LLM+RAG system that let analysts query multiple heterogeneous data sources in natural language without hand-written SQL. Also built and operationalized four Apache Airflow DAGs for large-scale ETL, emphasizing observability and freshness-aware metadata to keep outputs accurate and up to date.

A/B TestingAWSAWS LambdaAzureBERTBM25+125
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AB

Akshay Bapat

Mid-level AI Engineer specializing in LLM agents and RAG on Azure

Chicago, IL3y exp
Northern TrustGeorgia Tech
AgileAlteryxArtificial IntelligenceAutogenAzureAzure Cognitive Search+60
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SB

Sayak Banerjee

Screened

Intern Machine Learning Engineer specializing in LLMs, RAG, and search systems

Schaumburg, IL2y exp
PaylocityCarnegie Mellon University

Built and shipped production improvements to a Paylocity RAG-based AI assistant, redesigning retrieval into a hybrid HNSW + keyword pipeline and using tuned RRF to fuse rankings—cutting latency by ~2s and reducing token usage by ~5000. Previously spearheaded Apache Airflow integration across ETL pipelines at Acuity Knowledge Partners, creating reusable templates and automated triggers to reduce manual job monitoring.

PythonC++PySparkSQLFAISSSnowflake+100
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AY

Arun Yalamati

Mid-level AI & Machine Learning Engineer specializing in production ML and LLM applications

Chicago, IL5y exp
AmazonUniversity of Illinois Chicago
A/B TestingAgentic AIAirflowAmazon BedrockAnomaly DetectionApache Hadoop+97
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JJ

John Joji Melel

Screened

Intern Generative AI Engineer specializing in RAG and multi-agent systems

Chicago, IL2y exp
NeuraFlashUniversity of Chicago

Built and deployed a production RAG-based multi-agent chatbot during an internship to help consultants answer client questions and guide users through new IT systems with step-by-step instructions. Demonstrates hands-on experience with LangGraph/LangChain/Google ADK, unstructured document parsing and chunking for RAG, and a reliability-first approach to agent workflows (metrics, fallbacks, human-in-the-loop, guardrails).

PythonSQLRC++CypherKubernetes+87
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AP

Atharvraj Patil

Mid-level Software Engineer specializing in LLMs, RAG, and GenAI backends

Chicago, IL2y exp
GraingerUC San Diego
PythonJavaC++SQLGitGitHub+61
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PS

Pranay Singh

Junior Analytics & Consulting Professional specializing in retail and experimentation

Chicago, IL3y exp
BCGUniversity of Oklahoma
Advanced AnalyticsAlgorithmsApplication ConfigurationArenaArtificial Intelligence (AI)Applicant Tracking Systems (ATS)+53
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JS

Jaspreet Sethi

Director-level Product Data Science leader specializing in experimentation and causal inference

Chicago, IL14y exp
Capital OneUniversity of Illinois Chicago
Product analyticsProduct data scienceData scienceData-driven product developmentDecision systemsProduct strategy+101
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PA

Prudhvi Angirekula

Mid-level AI Engineer specializing in LLM agents, RAG, and enterprise GenAI

Chicago, IL6y exp
Morgan StanleyWichita State University
AI AgentsAgent OrchestrationPrompt EngineeringRetrieval-Augmented Generation (RAG)LLM WorkflowsLLM Agents+82
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SS

Sayuj Shah

Screened

Mid-level Data Analyst & AI Practitioner specializing in ML, LLMs, and analytics platforms

Schaumburg, IL4y exp
U.S. CellularGeorgia Tech

Data Analyst at U.S. Cellular who built production LLM solutions, including a Tableau-embedded chatbot that converts natural language questions into Oracle SQL and returns actionable KPI insights for non-technical users. Also authored MAD-CTI, a multi-agent LLM system for dark web hacker forum threat intelligence (published in IEEE Access) that outperformed single-agent approaches by 14%.

PythonSQLPostgreSQLRMATLABJavaScript+92
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MS

Miguel Saldana

Senior AI/ML Engineer specializing in GenAI, MLOps, and healthcare analytics

Chicago, IL13y exp
WezomRice University
A/B TestingACID TransactionsActive LearningAgileAirflowAmazon ECS+359
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JM

Janvitha Mandyam

Screened

Mid-level GenAI/ML Engineer specializing in LLM applications and RAG systems

Chicago, IL4y exp
Citibank

GenAI/LLMOps practitioner who deployed a production RAG-based customer service and knowledge retrieval system for a global bank using LangChain, FAISS/Azure Cognitive Search, GPT-4/Claude, and Guardrails—driving a reported 35% Q&A accuracy lift while reducing handle time and escalations. Also partnered with non-technical leaders at CVS Health to deliver ML-driven supply chain risk and inventory insights via anomaly detection, NLG summaries, and stakeholder-friendly dashboards.

A/B TestingAI Solution DevelopmentAirflowAmazon EC2Amazon RedshiftAmazon S3+204
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JF

Jinghan Feng

Junior AI Engineer specializing in LLM systems, RAG pipelines, and cloud microservices

Chicago, IL2y exp
Digital EmissionsNorthwestern University
A/B TestingAirflowAmazon ECSAmazon S3Apache KafkaApache Spark+87
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IK

Ishita Kokil

Intern Machine Learning & Data Science Engineer specializing in LLMs and RAG systems

Evanston, IL2y exp
Northwestern UniversityNorthwestern University
PythonSQLCC++RJavaScript+64
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SA

Suhail Ahmed

Senior GenAI / AI-ML Scientist specializing in Healthcare AI

Chicago, IL11y exp
Tempus AIUniversity of Texas at Arlington
PythonJavaTypeScriptJavaScriptBashSQL+141
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SS

sahithi sane

Senior Generative AI/ML Engineer specializing in LLMs, RAG, and MLOps

Chicago, IL5y exp
Bank of AmericaMichigan State University
PythonSQLBashJavaScriptPyTorchTensorFlow+123
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VY

Vinay Yelalachinnolla

Mid-level AI/ML Engineer specializing in Generative AI, LLMs, and agentic RAG systems

Wheeling, IL4y exp
Bank of AmericaElmhurst University
Agentic AIApache SparkAutoGenAWSAWS EC2AWS Lambda+96
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BP

Bindu Pathlavath

Mid-level AI/ML Engineer specializing in risk analytics and MLOps on AWS

Chicago, IL4y exp
JPMorgan ChaseUniversity of Massachusetts Boston
A/B TestingAnomaly DetectionAutomationAWSAWS CloudFormationAWS CloudWatch+69
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VK

Vamsi Koppala

Screened

Mid-level Machine Learning Engineer specializing in Generative AI and RAG systems

Barrington, IL4y exp
ComericaTexas Tech University

LLM/ML engineer who has shipped an enterprise RAG-based Q&A system (LangChain/LlamaIndex, FAISS + Azure Cognitive Search, GPT-3.5/4 via OpenAI/Azure OpenAI) to production on Docker + Kubernetes/OpenShift, tackling hallucinations, retrieval quality, latency/cost, and RBAC/IAM security. Also partnered with operations leaders to turn manual reporting into an LLM-powered summarization and forecasting dashboard driven by real KPIs and iterative stakeholder feedback.

AgileAmazon Web Services (AWS)Apache SparkAsynchronous WorkflowsAutoGenAuto Scaling Groups (ASGs)+178
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VM

Vigneshwaran Moorthi

Screened

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and Clinical AI

Chicago, Illinois4y exp
OptumIllinois Institute of Technology

Built and productionized a HIPAA-compliant LLM+RAG Clinical AI assistant at Optum, fine-tuning GPT/LLaMA on de-identified patient notes and integrating FAISS/Pinecone for sub-second retrieval; reported to cut diagnosis time by ~20 minutes per case. Experienced in orchestrating ML pipelines (Airflow, AWS Step Functions, Azure Data Factory) and in reliability techniques for LLM systems (grounding, citations, confidence filters, monitoring) while partnering closely with clinicians and compliance teams.

A/B TestingAgentic AI WorkflowsAmazon CloudWatchAmazon EC2Amazon LambdaAmazon Redshift+138
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UK

Uday kumar swamy

Screened

Senior Machine Learning Engineer specializing in MLOps and NLP/GenAI

Chicago, USA9y exp
UnitedHealth GroupIllinois Institute of Technology

Built a production LLM-agent framework for a startup that performs daily financial/trading analysis by combining live market data with internal tools, including a centralized memory module to prevent context drift and reduce hallucinations. Also implemented an Airflow-orchestrated retail price forecasting pipeline deployed to AWS endpoints, scaling parallel workloads via Kubernetes Executor and validating systems with rigorous functional + LLM-specific metrics and cross-team collaboration.

PythonSQLRJavaScikit-learnTensorFlow+126
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SL

Srikar Lakkimsetti

Mid-level Machine Learning Engineer specializing in insurance and healthcare AI

Northbrook, IL4y exp
AllstateUniversity of Illinois Springfield
A/B TestingAPI GatewayAWSAWS CloudWatchAWS CodeDeployAWS EC2+87
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