Vetted Research Assistants

Pre-screened and vetted.

GO

Senior Software Developer specializing in Unity AR/VR and simulation training apps

Portage, MI10y exp
FreelanceWestern Michigan University
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KD

Mid-level Software Engineer specializing in algorithms, ML systems, and data infrastructure

Lexington, MA7y exp
New Generations Martial ArtsUniversity of Massachusetts Amherst
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HP

Junior Software Engineer specializing in serverless automation and full-stack web development

Joliet, IL2y exp
Cadence Premier LogisticsIllinois Institute of Technology
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PB

Mid-level Machine Learning & Robotics Engineer specializing in autonomous UAVs and biomedical ML

Golden, CO5y exp
Colorado School of MinesColorado School of Mines
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SP

Senior Software Engineer specializing in AI/ML and cloud backend systems

Santa Clara, CA5y exp
Machine Learning and Safety Analytics LabSanta Clara University
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RT

Junior AI/ML Engineer specializing in LLM applications, RAG, and multimodal computer vision

Milpitas, CA3y exp
PicaggoKansas State University
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VN

Mid-level AI/ML Engineer specializing in risk modeling, healthcare analytics, and MLOps

Newark, DE6y exp
University of DelawareUniversity of Delaware
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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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TT

Mid-Level Software Engineer specializing in AI/ML, cloud deployment, and full-stack systems

Boston, Massachusetts6y exp
West Virginia State University R&D CorporationWest Virginia State University
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AA

Junior Software Engineer specializing in ML inference infrastructure

California, USA2y exp
California State University, ChicoCalifornia State University, Chico
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KT

Mid-level ML Engineer specializing in AI systems and LLM infrastructure

Remote, USA4y exp
TilesUniversity of Rochester
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AR

Atiman Rohatgi

Screened ReferencesModerate rec.

Junior Software Engineer specializing in AI/ML and full-stack applications

Tempe, AZ2y exp
Arizona State UniversityArizona State University

AI/backend-focused builder who has shipped two distinct applied AI products: a game discovery platform with vector search + RAG chat, and an AI accounting platform for small businesses. Stands out for combining product discovery with hands-on system design, including sub-100ms retrieval performance, privacy-conscious financial workflows, and measurable impact like 58% compute-time reduction and support for 24,000+ user profiles.

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VP

Vishesh Patel

Screened

Junior AI/ML Engineer specializing in Python ML, NLP, and model deployment

Piscataway, New Jersey3y exp
Fairfield UniversityFairfield University

Built and productionized a real-time social-media sentiment analysis system used by a marketing team to monitor brand/campaign performance. Experienced in orchestrating LLM workflows with LangChain (validation → prompting → parsing → post-processing), plus monitoring, retraining, and RAG-style retrieval using embeddings/vector stores to keep outputs reliable over time.

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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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AP

Mid-Level Software Engineer specializing in Java microservices and event-driven systems

Overland Park, KS4y exp
AntraHarrisburg University of Science and Technology

Backend-focused engineer with experience spanning research and healthcare: owned a Python/SQL data pipeline that transformed vulnerability-fix code data from SQLite into model-ready JSON for LLM analysis. Also deployed Dockerized Spring Boot microservices to Kubernetes with Jenkins CI/CD and built Kafka-based real-time event streaming (appointment/report events) with idempotent consumers to avoid duplicate processing.

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TS

Tirth Shah

Screened

Mid-level AI/ML Engineer specializing in anomaly detection, data tooling, and cloud-native systems

Chico, CA4y exp
Chico State EnterprisesCalifornia State University, Chico

Backend/platform engineer who built an LLM-driven QA automation system (“mockmouse”) using a Flask orchestration microservice, Socket.IO real-time updates, Redis caching, and strict Pydantic schemas to turn prompts into reliable action graphs and automated browser tests. Has hands-on Kubernetes delivery experience (Docker/Helm/Jenkins) and has supported large migration programs, validating ETL cutovers with 1M+ synthetic records and rigorous output comparisons; also built event-driven monitoring/anomaly detection streaming into Grafana.

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Dhairya Shah - Entry-level Machine Learning Engineer specializing in computer vision and systems in Buffalo, NY

Dhairya Shah

Screened

Entry-level Machine Learning Engineer specializing in computer vision and systems

Buffalo, NY1y exp
University at BuffaloUniversity at Buffalo

ML-focused builder who has shipped an end-to-end income-class prediction product: built the data pipeline, trained models, deployed via Streamlit with a live UI, and tracked success via accuracy (84%), adoption, and latency. Demonstrates strong practical MLOps instincts (Docker/Streamlit Cloud, logging/monitoring, caching) and data engineering reliability patterns (schema checks, idempotency, retries, backfills) while iterating quickly in ambiguous, solo-project environments.

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Yash Mahajan - Junior Software Engineer specializing in AI, full-stack development, and applied ML in Fullerton, CA

Yash Mahajan

Screened

Junior Software Engineer specializing in AI, full-stack development, and applied ML

Fullerton, CA2y exp
California State University, FullertonCalifornia State University, Fullerton

AI/full-stack product builder who has shipped production agentic systems in both customer support analytics and medical claims automation. They combine React/Next.js frontends with Python-based async backends and LLM orchestration, delivering measurable outcomes like 60% cost savings, 40% less manual review, and reducing claims processing from 30 minutes to 20 seconds.

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