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Vetted Unsupervised Learning Professionals

Pre-screened and vetted.

SP

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

Remote, USA6y exp
DXC TechnologyMontclair State University
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RP

Mid-Level Software Engineer & Consultant specializing in enterprise platforms

Hilliard, OH4y exp
Technocraft solutionOhio Dominican University
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HV

Mid-level Data Scientist specializing in FinTech and healthcare NLP/LLMs

4y exp
University of North TexasUniversity of North Texas
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CK

Entry-Level AI Engineer specializing in NLP and LLM-powered applications

Fairfax, VA1y exp
George Mason UniversityGeorge Mason University

AI engineer who built an agentic, production-deployed LLM workflow for tobacco violation parsing and automated multi-case creation, using six specialized agents and a human-in-the-loop confidence-threshold routing design. Addressed data privacy constraints by generating synthetic datasets with LLM prompting, and orchestrated reproducible end-to-end pipelines in LangChain with robust testing and evaluation (precision/recall, micro-F1).

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VH

Entry-level Machine Learning Engineer specializing in LLMs, RAG, and data pipelines

Cincinnati, OH1y exp
University of CincinnatiUniversity of Cincinnati
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VS

Mid-level AI/ML Engineer specializing in fraud detection, credit risk, and NLP

3y exp
Kemp TechnologiesAtlantis University
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SS

Senior Data Scientist / ML Engineer specializing in NLP, speech AI, and computer vision

San Jose, California5y exp
Ecosmob TechnologiesC-DAC ACTS Pune
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HI

Haeshitha Indukuri

Screened ReferencesStrong rec.

Entry AI/ML Engineer specializing in Generative AI, LLMs, and MLOps

Denton, TX1y exp
University of North TexasUniversity of North Texas

Built and productionized a MediCloud/Medicoud LLM microservice platform that lets clinicians query medical data in natural language, orchestrating multi-step RAG-style workflows with LangChain and evaluating/debugging with LangSmith. Delivered measurable gains (consistency ~70%→90% / +20%; latency ~2.0s→1.1s / -40%) by implementing structured prompts, fallback logic across multiple LLMs, hybrid retrieval tuning, and AWS Lambda performance optimizations (package size, async, caching).

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JK

Jeevan Kumar

Screened

Mid-level Full-Stack AI Engineer specializing in LLM systems and RAG

Remote, USA5y exp
Augmented AIUniversity of Massachusetts Dartmouth

Built and shipped a production "Campaign AI" multi-agent system (LangGraph) that personalizes B2B outbound emails at scale using Apollo.io prospect data, clustering-based segmentation, and 21 persona variants. Notably uncovered that high click rates were largely email security scanners and created a validated bot-detection/scoring pipeline (timestamps/IP/user-agent/click patterns), bringing reported engagement down from ~40% to a trusted 5–8% that aligned with real conversions.

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SC

Junior Software/AI Engineer specializing in LLM agents and RAG systems

California, USA2y exp
California State University, FullertonCalifornia State University, Fullerton
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MM

Mid-level Machine Learning Engineer specializing in NLP, Computer Vision & Predictive Analytics

Islamabad, Pakistan5y exp
Vision Byte TechnologiesKohat University of Science and Technology

Built a production LLM fine-tuning pipeline for domain-specific code generation at Pigeonbyte Technologies, including automated collection and rigorous quality filtering of 10M+ code samples (AST validation, sandbox execution/testing, deduplication, drift monitoring, and human-in-the-loop review). Also implemented end-to-end ML orchestration in Apache Airflow with data quality gates, dataset versioning in S3, benchmarking, and automated model promotion, and has a reliability-first approach to agent/workflow design.

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MK

Mid-level Quantitative Developer specializing in low-latency trading systems

Lahore, Pakistan5y exp
FreelanceUniversity of Roehampton

Backend/ML engineer with deep fintech and marketplace experience: built a real-time financial analytics + algorithmic trading platform (Python/Postgres/Kafka/Redis) and drove major DB performance wins (10x faster analytics; sub-10ms response consistency). Also shipped an end-to-end ML recruitment matching platform (scraping/ETL/modeling/Django deployment) with reported 92% matching accuracy, and emphasizes production reliability via monitoring, blue-green deploys, and robust workflow error handling.

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CM

Mid-level Research Assistant specializing in interpretable ML and AI evaluation

Dartmouth, MA6y exp
University of Massachusetts DartmouthUniversity of Massachusetts Dartmouth
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BN

Mid-level Machine Learning Engineer specializing in Generative AI and healthcare NLP

Remote, CT2y exp
FluteSpaceUniversity of New Haven
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JP

Intern AI/ML Engineer specializing in MLOps and anomaly detection

Baltimore, MD0y exp
VisioneerITHofstra University
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MK

Junior Machine Learning Engineer specializing in NLP and LLM-based clinical AI

Charleston, IL2y exp
Eastern Illinois UniversityEastern Illinois University

Built a production automated resume matching system using Python, FAISS vector search, and Selenium-based job scraping, including mitigation for IP blocking and heterogeneous site structures. Also develops LLM/RAG applications with LangChain, using Pydantic-guardrailed structured outputs and LLM-as-a-judge evaluation (including a project focused on tone/semantics for a 3D avatar’s emotional responses).

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RD

Junior Machine Learning Engineer specializing in Agentic RAG and Document AI

Durgapur, West Bengal, India2y exp
CAPSITECH IT SERVICES PVT. LIMITEDHaldia Institute of Technology
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MA

Entry AI Engineer specializing in machine learning, computer vision, and data mining

Houston, TX
University of DamascusUniversity of Damascus
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