Vetted scikit-learn Professionals

Pre-screened and vetted.

SM

Entry-Level Full-Stack Engineer specializing in backend APIs and cloud architectures

Buffalo, United States1y exp
CrowdDoingUniversity at Buffalo
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AK

Junior AI Engineer specializing in LLM systems and RAG

San Francisco, CA2y exp
Liebre.aiFlorida State University
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RG

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

Austin, TX5y exp
Royal Monarch Solutions LLCUniversity of the Pacific
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AR

Mid-level AI & Data Science professional specializing in MLOps, deep learning, and UAV research

Islamabad, Pakistan5y exp
AI-Explain You ScienceAir University, Islamabad
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DM

Mid-level Science Editor specializing in astronomy and astrophysics

Waukesha, WI10y exp
Astronomy magazineUniversité Côte d’Azur
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SG

Junior Full-Stack Developer specializing in Django/React and cloud-native APIs

Hyderabad, India1y exp
Excel IT CORP (P) Ltd.Pace University
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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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Gabe Hoing - Intern-level software engineer specializing in full-stack and data systems in Spokane, WA

Gabe Hoing

Screened

Intern-level software engineer specializing in full-stack and data systems

Spokane, WA2y exp
Corporate ToolsGonzaga University

Built an AI agent management system in a senior design project to support cybersecurity analysts with gathering and triaging emerging threat intelligence from sources like CISA. Stands out for a thoughtful, production-minded approach to AI development, using specialized agents, strict output schemas, and deterministic controls to manage failure cases.

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AP

Aniket Patel

Screened

Junior AI/ML Engineer specializing in full-stack AI systems

Ashland, OH2y exp
Ashland UniversityAshland University

Full-stack AI engineer who has built and deployed multiple end-to-end LLM products, including an AI interview assistant, a multi-agent market research platform, and a policy document explainer. Particularly strong in productionizing agentic workflows, integrating tools like Whisper, Tavus, LiveKit, CrewAI, and LangGraph, and hardening messy real-world AI/document pipelines with validation, memory isolation, and fallback handling.

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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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MJ

Mid-level Data Analyst specializing in SQL/Python analytics, ETL pipelines, and BI dashboards

Denton, TX4y exp
Alenotech SolutionsFlorida Atlantic University

Data/AI practitioner who built a production LLM-driven healthcare claims analytics and dashboarding system to reduce avoidable ER visits—processing 1.4M+ claims, flagging 19% as non-emergent, and projecting ~$2.8M in annual savings. Demonstrates strong real-world LLM reliability and performance engineering (grounding, numeric validation, caching, materialized views, quantization) plus orchestration experience with Airflow and Azure Data Factory.

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Harshit Vashisth - Junior AI Engineer specializing in LLMs, RAG systems, and MLOps in Remote, United States

Junior AI Engineer specializing in LLMs, RAG systems, and MLOps

Remote, United States1y exp
Concept2ActionJaypee Institute of Information Technology

Robotics software engineer who built an end-to-end system ("justmatrix"), focusing on multi-agent orchestration and a multi-RAG retrieval backend/API. Has hands-on ROS experience, including a custom node for reliable high-frequency sensor data routing, plus deployment automation using Docker, Kubernetes, and CI/CD.

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AS

Junior CRM Analyst specializing in SaaS and HealthTech automation

Frisco, TX2y exp
ArteraWebster University
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AK

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

Frisco, TX4y exp
DoubleneBelhaven University
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SZ

Entry Software Engineer specializing in Generative AI and full-stack development

Queens Village, NY0y exp
RevatureQueens College, CUNY
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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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Jaiden Kettleson - Entry-Level Full-Stack & AI Engineer specializing in chatbots and web apps

Jaiden Kettleson

Screened ReferencesStrong rec.

Entry-Level Full-Stack & AI Engineer specializing in chatbots and web apps

1y exp
The Green DragonMaryville University

Data Science honors graduate (Maryville University) who has built Python/SQL backends and a capstone website handling sensitive user data. Emphasizes secure data handling (password encryption, secure database updates) and uses Git/GitHub Pages with CI/CD-style practices for managing and deploying changes.

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Venkata Yerramneni - Entry-Level Software Engineer specializing in full-stack web development and cybersecurity

Entry-Level Software Engineer specializing in full-stack web development and cybersecurity

Hack The Box
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MR

Mid-level AI/ML Engineer specializing in NLP, GenAI, and conversational AI

Indianapolis, IN4y exp
Indiana University IndianapolisIndiana University Indianapolis

Built and deployed a production bilingual (Bengali/English) AI virtual assistant that replaced IVR for telecom customer service at massive scale (~15M users), integrating ASR/TTS, Rasa dialogue management, and custom NLP. Overcame low-resource Bengali data and noisy call-center audio with synthetic data augmentation and transformer fine-tuning, achieving significant production gains including ~50% reduction in support calls.

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Muhammad Murtaza Murtaza - Mid-level Machine Learning Engineer specializing in NLP, Computer Vision & Predictive Analytics in Islamabad, Pakistan

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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