Vetted ChromaDB Professionals

Pre-screened and vetted.

AM

Mid-level Applied AI Engineer specializing in LLMs, Prompt Engineering, and RAG

United States (Remote)4y exp
SprinklrOklahoma City University
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HT

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

Brooklyn, NY3y exp
CARA SYSTEMSNortheastern University
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VK

Junior AI/ML Engineer specializing in RAG and multi-agent LLM systems

USA2y exp
CloudvikUniversity of Central Missouri
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PG

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

Washington, USA4y exp
iLink DigitalFlorida Atlantic University
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SS

Mid-level Machine Learning Engineer specializing in distributed AI systems

Sunnyvale, CA4y exp
Community Dreams FoundationUniversity at Buffalo
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Snigdha Reddy Podduturi - Junior Data & AI Engineer specializing in cloud AI and analytics in Remote

Snigdha Reddy Podduturi

Screened ReferencesStrong rec.

Junior Data & AI Engineer specializing in cloud AI and analytics

Remote3y exp
Lightning MindsUniversity of Massachusetts Lowell

Built production AI backend systems in healthcare and e-commerce, including a healthcare agent that automated clinical workflows like medication refills, immunizations, and scheduling using FHIR APIs and cloud-native infrastructure. Strong in end-to-end backend ownership, LLM orchestration, and adding guardrails/validation for high-stakes and customer-facing AI workflows.

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Ronald Forte - Entry-Level Software Engineer specializing in AI APIs and RAG systems

Ronald Forte

Screened ReferencesModerate rec.

Entry-Level Software Engineer specializing in AI APIs and RAG systems

0y exp
RevatureHunter College (CUNY)

Junior/entry-level AI/LLM engineer who built a production-oriented RAG onboarding and knowledge assistant that ingests GitHub repos and internal sources (e.g., Confluence/Jira) using ChromaDB, with reliability features like retrieval fallbacks, retries, caching, and monitoring. Currently implementing a LangGraph-based multi-agent workflow with intent routing and Pydantic/Magentic-validated structured outputs, plus CI/CD offline evals and online metrics (Grafana/Prometheus) to improve predictability and reliability.

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SS

Mid-level AI Engineer and Data Scientist specializing in LLM agents and RAG systems

Palo Alto, CA5y exp
LemmataUniversity at Buffalo

Built a production-grade LLM evaluation and regression system that stress-tests models across hundreds of iterations, combining LLM-as-judge, semantic similarity, statistical metrics, and rule-based checks, with results delivered via stakeholder-friendly HTML reports and dashboards. Experienced orchestrating multi-agent RAG workflows using LangChain/LangGraph and event-driven GenAI pipelines in n8n integrating OCR, speech-to-text, and external APIs, with strong emphasis on reliability, observability, and explainable failures.

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SK

Sandeep Katna

Screened

Mid-Level Software Engineer specializing in distributed systems and AI agent workflows

5y exp
San José State UniversitySan José State University

Software engineer with enterprise CPQ/CRM/ERP integration experience (Argano) who owned an end-to-end pricing preview capability deployed on AWS Kubernetes with Jenkins CI/CD and full observability (Prometheus/Grafana). Also built an AI-native research agent using LangChain + Chroma to filter academic papers, reporting ~15 hours/week saved for a professor.

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VP

Junior Software Engineer specializing in backend systems and machine learning

Atlanta, GA3y exp
Georgia State UniversityGeorgia State University

Independent builder of production-grade systems: shipped an end-to-end URL shortener with JWT auth, Redis rate limiting/caching, Postgres, Docker, and real-time analytics, and separately architected a Redis-backed distributed task queue handling 1000+ tasks/min. Demonstrates strong distributed-systems instincts (atomicity, retries/DLQ, idempotency, heartbeats) plus a focus on maintainable code and self-documenting APIs (FastAPI/OpenAPI, versioned routes).

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BZ

Bill Zoheb

Screened

Senior AI Engineer specializing in LLMs, RAG, and production ML systems

New York, NY8y exp
HKA EnterprisesUtica University

Built GynAI, an end-to-end maternal clinical decision support platform for OB/GYN practices and hospitals in North America, combining predictive ML with RAG-based LLM explainability. The candidate emphasizes real production ownership across experimentation, deployment, monitoring, and iteration, with reported impact including fewer delayed interventions in high-risk pregnancies and a 15-20% reduction in false positives.

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SZ

Mid-level AI Engineer specializing in Python, LLMs, and production ML systems

Netherlands, Remote5y exp
Devhouse SpindleUniversity of Central Punjab

Production-focused ML/AI engineer with hands-on ownership across classical ML and GenAI systems, from CV/NLP services to enterprise RAG. Stands out for combining research-to-production execution with measurable business impact: 40% processing-efficiency gains, 35% fewer support tickets, 5x latency improvement, and 3x throughput gains while maintaining safety and quality.

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VK

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

New York, USA5y exp
PeblinkYeshiva University

LLM engineer/data analyst who built a production RAG QA assistant over the Jurafsky & Martin NLP textbook to reduce hallucinations and provide explainable, source-grounded answers. Experienced with LangChain/LangGraph orchestration, retrieval optimization (embeddings, vector DBs, caching), and rigorous evaluation/monitoring (Retrieval@K, A/B tests, telemetry/drift). Previously communicated analytics insights to non-technical stakeholders at GS Analytics using Power BI and simplified reporting.

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VB

Mid-level AI Engineer specializing in NLP, computer vision, and healthcare analytics

Dartmouth, US3y exp
Integrated MonitoringUniversity of Massachusetts Dartmouth

Data scientist who has built production LLM agents (GPT-4o + LangChain + RAG) to automate analyst-style ad hoc CSV analysis with guardrails and GPT-as-a-judge evaluation. Also delivered an explainable healthcare NLP system for ICD code classification by collaborating closely with clinicians, using a hybrid rule-based decision tree + BERT model to reach 97% accuracy and cut manual review time.

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DA

Junior Full-Stack Software Engineer specializing in cloud-native web apps and AI tooling

California, US3y exp
EduQuencherMissouri University of Science and Technology

Software engineer with experience across edtech, live gaming, and an AI document intelligence platform, delivering end-to-end customer-facing features and production backends. Built secure, automated live-session scheduling integrating Zoom and TalentLMS (JWT/RBAC, idempotency, transactions) cutting setup time from ~3 minutes to under 1 minute, and optimized real-time gaming dashboards/APIs with query tuning, caching, and CDN improvements (~60% latency reduction under peak load) on AWS.

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Binaya Sharma - Senior Software Engineer specializing in full-stack systems, big data, and applied AI in Baton Rouge, LA

Binaya Sharma

Screened

Senior Software Engineer specializing in full-stack systems, big data, and applied AI

Baton Rouge, LA6y exp
365LabsLouisiana State University

Built and deployed ForensicLLM, a local domain-specific LLaMA-3.1-8B model for digital forensic investigators using RAFT + RAG over 1000+ curated research papers, with citation-aware responses and rigorous evaluation (BERTScore/G-Eval). Deployed via vLLM and Docker and validated through a chatbot survey with 80+ participants; published at DFRWS EU 2025.

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Karan Baid - Intern Machine Learning Engineer specializing in Generative AI and RAG systems in Jaipur, India

Karan Baid

Screened

Intern Machine Learning Engineer specializing in Generative AI and RAG systems

Jaipur, India
Netgraph Networking Pvt. Ltd.Vellore Institute of Technology

Early-career AI/LLM builder who created and deployed a multi-agent news analysis agent (Patrakarita) using CrewAI, coordinating researcher/analyst roles to turn noisy article URLs into structured, prioritized outputs (claims, tone, verification questions, opposing views). Strong focus on orchestration debugging and reliability evaluation, including measuring hallucination/redundancy and improving reasoning by refactoring pipeline sequencing.

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Srikar Tharala - Mid-level AI/ML Engineer specializing in Generative AI and RAG systems in Remote, USA

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

Remote, USA4y exp
ProcialCentral Michigan University

Currently at ProShare and reports building an AI/LLM-powered system deployed to production, aimed at helping with status-related difficulties and reducing misunderstandings across transactions. Also cites prior collaboration at Porsche with marketing teams, focusing on translating marketing goals into technical requirements and communicating solutions clearly to non-technical stakeholders.

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Gomathy Selvamuthiah - Junior Data/AI Engineer specializing in MLOps, real-time pipelines, and LLM applications in Portland, US

Junior Data/AI Engineer specializing in MLOps, real-time pipelines, and LLM applications

Portland, US2y exp
SBD TechnologiesNortheastern University

Built an LLM-driven MLOps agent at SBD Technologies that automated an EV-charging prediction workflow end-to-end, integrating with real-time Kafka/FastAPI systems supporting 120K+ chargers at 99.99% event delivery. Addressed frequent schema drift by implementing SQLAlchemy/Flyway validation (60% reduction in drift issues) and deployed as Kubernetes microservices with GitHub Actions CI/CD; also has Airflow-based ingestion/crawling experience into Snowflake and stakeholder-facing delivery via a Fleetcharge PWA.

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Shuchi Shah - Senior Applied AI Engineer specializing in RAG and full-stack systems in San Jose, CA

Shuchi Shah

Screened

Senior Applied AI Engineer specializing in RAG and full-stack systems

San Jose, CA13y exp
OpGov.AISan Diego State University

Backend engineer with experience building an end-to-end civic tech AI platform that ingests city council meeting videos, transcribes them with Whisper, and enables natural-language Q&A via a LangChain/FAISS RAG pipeline. Demonstrated strong systems thinking by tuning retrieval for accuracy/latency/memory (cutting response time ~3s→1s and memory ~500MB→25MB) and by safely migrating an ERP from monolith toward services using dual writes, reconciliation, and idempotency to protect financial workflows.

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SP

Smit Panchal

Screened

Mid-level Full-Stack & XR Developer specializing in GenAI and immersive AR/VR systems

3y exp
Community Dreams FoundationIllinois Institute of Technology

Built and deployed a "personal second brain" product (CloneMind) with an end-to-end RAG pipeline for retrieving information across PDFs, URLs, images, and audio using Next.js/Node.js/Postgres/Supabase/Redis. Demonstrates strong practical depth in retrieval quality tuning, latency reduction via caching, and stateful orchestration with LangChain/LangGraph, plus experience persuading a non-technical professor stakeholder by shipping a working prototype.

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KS

Kevin Sheu

Screened

Junior Full-Stack Software Engineer specializing in AI/ML platforms and microservices

2y exp
NCKUNational Cheng Kung University

Graduate-school lab engineer who built and owned the final architecture of a Microservices Hub that integrates REST APIs, issues API keys, monitors 10+ Linux servers, and visualizes service dependencies via a topology graph. Strong in bridging legacy and modern stacks (Dockerized and non-Dockerized services like Apache/screen) using deep Linux/networking knowledge, plus practical real-time audio streaming for STT/TTS and experience mentoring others.

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CharanKumar Pathakamuri - Entry-Level GenAI/LLM Engineer specializing in agentic systems and RAG in Baltimore, MD

Entry-Level GenAI/LLM Engineer specializing in agentic systems and RAG

Baltimore, MD1y exp
Kanehl ConsultingUniversity of Maryland, Baltimore County

LLM/AI agent engineer with consulting/contract experience (Kanhaiya Consulting LLC) who deployed a production AI agent to automate BIM list workflows end-to-end—from database understanding and data cleaning to automated visualizations/dashboards. Worked around restricted real-time data access by generating synthetic data and improving outputs via supervised fine-tuning, and uses AWS-based LLMOps observability (Opic/OPEC) plus hybrid retrieval (vector+BM25 with reranking) to optimize relevance, latency, and cost.

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