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Vetted LLM Fine-Tuning Professionals

Pre-screened and vetted.

LLM Fine-TuningPythonDockerSQLPyTorchTensorFlow
DK

Dheeraj Kumar Reddy Appakondreddigari

Mid-level AI/ML Engineer & Data Scientist specializing in NLP and production ML

Baltimore, MD4y exp
PNCUniversity of Maryland, Baltimore County
PythonRSQLJavaNumPyPandas+98
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RB

Rahul Bijoor

Mid-Level Software Engineer specializing in AI automation and RAG systems

USA5y exp
Pervaziv AICalifornia State University, Chico
PythonTypeScriptJavaScriptSQLC#R+73
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TR

Tharuni Reddy Polu

Mid-level AI/ML Engineer specializing in healthcare GenAI and MLOps

Southfield, MI6y exp
Corewell HealthCentral Michigan University
Anomaly DetectionApache AirflowApache KafkaApache SparkAWS GlueAWS Lambda+108
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AK

Aditya Kamath

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

College Park, US4y exp
University of MarylandUniversity of Maryland, Robert H. Smith School of Business
PythonSQLJavaScriptPandasNumPyMatplotlib+73
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NK

Naman Khurpia

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and cloud deployment

Santa Clara, CA4y exp
UshurUniversity at Buffalo
Machine LearningDeep LearningLarge Language Models (LLMs)LLM Fine-tuningRetrieval-Augmented Generation (RAG)Embeddings+66
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VS

venkata sai gowhith KANISETTY

Junior Software Engineer specializing in backend, cloud, and LLM applications

San Jose, CA2y exp
San José State UniversitySan José State University
AgileAnsibleApache HadoopApache HiveApache KafkaApache Spark+62
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SK

Sri Krishna Abhijay Mallavajhula

Mid-level AI/ML Engineer specializing in LLM fine-tuning and RAG for healthcare

USA4y exp
UnitedHealth GroupUniversity of Central Missouri
PythonSQLC++JavaGoScala+83
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VV

Vamsidhar Vuddagiri

Screened

Mid-level AI/ML Engineer specializing in LLMs, MLOps, and Azure

Remote, USA6y exp
Impacter AIUniversity of Dayton

“AI/ML engineer who led Impacter AI’s production deployment of a specialized outreach LLM (CharmedLLM) fine-tuned on GPT-4.1, cutting API costs ~40% while boosting outreach effectiveness ~60%. Built the supporting MLOps and data infrastructure (MLflow, Kubernetes, PySpark, Kafka) and has agentic AI experience from University of Dayton, using LangChain + RAG and vector search (Pinecone) to improve reliability and reduce hallucinations.”

PythonPandasNumPyScikit-learnPyTorchTensorFlow+109
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RP

revanth polthi

Screened

Mid-level Data Scientist specializing in Generative AI and MLOps

San Jose, CA5y exp
AllstateUniversity of Central Missouri

“GenAI/LLM engineer with production experience at Allstate building an end-to-end document intelligence workflow for insurance operations—automating document intake, classification, and risk signal extraction. Emphasizes high-reliability design for regulated/high-stakes outputs using schema enforcement, confidence thresholds, validation rules, and human-in-the-loop routing, with metric-driven offline evaluation and production monitoring.”

A/B TestingAWSAWS GlueAWS LambdaBashBERT+121
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DG

Darshan Gencarelle

Executive AI/ML & Platform Technology Leader specializing in LLMs, GraphRAG, and security

Easthampton, MA25y exp
SyndeosKeller Graduate School of Management
Large Language Models (LLMs)LLM fine-tuningSemantic searchDeep learningPrompt engineeringDistributed systems+97
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AP

Albin Poulose

Mid-level AI/ML Data Engineer specializing in secure ML pipelines and AI governance

Plano, Texas4y exp
InfosoftUniversity of Texas at Dallas
PythonRSQLPostgreSQLPySparkC+++90
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DP

DURGA PRASANNA PEDDIREDDI

Mid-level GenAI/ML Engineer specializing in RAG, semantic search, and LLM systems

Lubbock, TX5y exp
Rawls College of Business, Texas Tech UniversityTexas Tech University
PythonSQLNumPyPandasScikit-learnFeature Engineering+72
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SG

Sahil Gupta

Screened ReferencesStrong rec.

Junior AI Software Engineer specializing in LLM agents, RAG, and healthcare NLP

MA, U.S.A1y exp
AltiusUniversity of Massachusetts Amherst

“Backend engineer who built an agentic LLM system for private equity/finance that answers questions over enterprise contracts and documents using a vector-db RAG pipeline. Differentiator is a trust-focused citation framework (with highlighted source text) to reduce hallucinations in high-stakes workflows, plus strong DevOps experience deploying microservices on Kubernetes with Helm/GitOps and building Kafka real-time pipelines.”

PythonTypeScriptJavaScriptKotlinJavaSQL+165
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TA

Tanweer Ashif

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer and Data Scientist specializing in LLMs and MLOps

Buffalo, NY5y exp
University at BuffaloUniversity at Buffalo

“Data science/AI intern at University at Buffalo Business Services who built and deployed production systems spanning classic ML and LLM assistants. Delivered real-time competitor intelligence for a Cornell-partnered, $1B beverage launch by scraping/cleaning 5,000+ SKUs and deploying models via API, then built a domain-aware LLM assistant to modernize Excel-based workflows with strong grounding, privacy controls, and sub-5s latency.”

PythonRSQLCC++Data Structures+141
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SC

Shashank Chauhan

Screened ReferencesStrong rec.

Mid-level Software Engineer specializing in AI/ML and cloud data platforms

Dearborn, MI3y exp
Data Science and Management Research LabUniversity of Michigan-Dearborn

“ML engineer with hands-on experience taking a Gaussian Process Regression-based intelligent survey timing system from build to real-world deployment, including a 3-week RCT on 120 participants and measurable improvements (15% response rate, 23% data quality). Also served as a key technical resource at CData for customer-facing demos and debugging hundreds of production issues, bridging engineering with Sales and Customer Success.”

AgileAWSAWS LambdaBERTCloud ComputingData Analytics+154
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MA

Monthir Ali

Screened

Senior AI/ML Engineer specializing in LLMs, RAG, and VR/XR multimodal systems

Salt Lake City, UT8y exp
University of UtahUniversity of Utah

“PhD researcher (University of Utah) who built a production RAG-powered Virtual Reality Research Assistant to answer lab research questions with concrete citations. Implemented an end-to-end LangChain pipeline using PyPDFLoader, chunking strategies, OpenAI embeddings, and ChromaDB, with emphasis on grounding to reduce hallucinations and ensure research-grade accuracy. Collaborated closely with a non-technical PhD advisor to scope requirements, manage cost constraints, and demo iterative progress.”

A/B TestingAWSAWS LambdaC#C++ChromaDB+105
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YR

YESWANTH REDDY CHEREDDY

Screened

Mid-level ML Engineer specializing in LLMs, Generative AI, and MLOps

DoubleneUniversity of Maryland, College Park

“AI/ML engineer with production experience building an enterprise network-fault prediction assistant that combines anomaly detection (Isolation Forest + LSTM) with an LLM layer for incident diagnosis and recommended resolutions. Hands-on with orchestration (Airflow, Prefect, Dagster) to run ETL/ELT and automated training/fine-tuning workflows, and has delivered AI solutions with non-technical stakeholders (retail customer support ticket categorization/response suggestions).”

Machine LearningArtificial IntelligenceLarge Language Models (LLMs)Generative AIBERTGPT+48
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JK

Jaykumar Kotiya

Screened

Mid-level Machine Learning & AI Engineer specializing in Generative AI, NLP, and MLOps

Boston, MA6y exp
CitiusTechNortheastern University

“Built and deployed production LLM systems for summarizing sensitive legal and financial documents, emphasizing GDPR-aligned privacy controls and scalable hybrid cloud architecture. Experienced with Kubernetes/Airflow orchestration and rigorous testing/monitoring practices, and has delivered measurable business impact (18% conversion lift) by translating AI outputs for non-technical marketing stakeholders.”

AgileApache HadoopApache KafkaApache SparkAWSAWS Lambda+181
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SK

Sruthi Kondapalli

Screened

Intern Software Engineer specializing in backend systems and Generative AI

Colorado, USA2y exp
Sports MediaIllinois Institute of Technology

“Built and deployed a scalable, production-ready LLM knowledge assistant using a RAG architecture (LangChain + vector store/FAISS) to replace keyword search for internal documents. Demonstrates hands-on expertise in hallucination reduction and retrieval quality improvements through semantic chunking, similarity tuning, prompt design, and human-in-the-loop validation, plus strong stakeholder communication via demos and visual explanations.”

PythonTypeScriptAPI DevelopmentData ModelingWorkflow AutomationMachine Learning+129
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CK

Charith Kandula

Screened

Mid-level Conversational AI Engineer specializing in enterprise chatbots and workflow automation

Miami, FL4y exp
Lid VizionUniversity of South Dakota

“Built a production LLM/RAG document extraction and game/quiz content workflow using LLaMA 2, LangChain/LangGraph, and FAISS, achieving ~94% accuracy and reducing turnaround from hours to minutes. Demonstrates strong applied MLOps/orchestration (CI/CD, MLflow, Databricks/PySpark), robust handling of noisy/variable document layouts (layout chunking + OCR fallbacks), and practical reliability practices (human-in-the-loop routing, drift monitoring, A/B testing).”

A/B TestingAnalyticsAPI DevelopmentAudit LoggingAWSCI/CD+241
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NH

Nicholas Homme

Screened

Senior Full-Stack Developer specializing in React, Node.js, and AWS

Los Angeles, CA9y exp
SmartiStackUniversity of South Florida

“Backend/data engineer with hands-on production experience across Python/Flask microservices and AWS serverless/data platforms (Lambda, DynamoDB, S3, Glue/PySpark). Demonstrated strong reliability and operations mindset (JWT/RBAC, retries/timeouts/circuit breakers, CloudWatch/SNS alerting) and measurable performance wins (SQL report runtime cut from 10 minutes to 30 seconds). Seeking ~$150k base and cannot travel for onsite meetings for the next 5–6 months due to family medical constraints.”

A/B TestingAlgorithmsAngularJSApache KafkaAPI DesignAPI Testing+358
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SG

Srinivasan GomadamRamesh

Screened

Mid-level AI/ML Engineer specializing in LLMs, RAG, and production inference

Redmond, WA7y exp
Quadrant TechnologiesUniversity of Texas at Dallas

“AI/LLM engineer who built a production resume-parsing and candidate-matching platform at Quadrant Technologies, combining agentic LangChain workflows, VLM-based document template extraction (~85% accuracy), and a hybrid RAG backend for resume-to-JD search. Notably integrated automated LLM evals and metric-based CI/CD quality gates to catch silent prompt/model regressions, and led a 3-person team across frontend/backend/testing.”

PythonPandasNumPySciPyScikit-learnTensorFlow+100
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HK

Hari Krishna Kona

Screened

Mid-level AI/ML Engineer specializing in Generative AI and LLM-powered NLP

Boston, MA3y exp
G-PLindsey Wilson College

“LLM/AI engineer who built a production automated document-understanding pipeline on Azure using a grounded RAG layer, designed to reduce manual review time for unstructured financial documents. Demonstrates strong real-world scaling and reliability practices (Service Bus queueing, Kubernetes autoscaling, observability, retries/circuit breakers) plus rigorous evaluation (shadow testing, replaying traffic, multilingual edge-case suites) and stakeholder-friendly, evidence-based explainability.”

Machine LearningDeep LearningGenerative AILarge Language Models (LLMs)Computer VisionSemantic Search+111
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