Vetted Multi-Agent Systems Professionals

Pre-screened and vetted.

Akshit Gaur - Mid-level AI Engineer specializing in LLM agents, evaluation pipelines, and microservices in Mountain View, CA

Mid-level AI Engineer specializing in LLM agents, evaluation pipelines, and microservices

Mountain View, CA4y exp
Carnegie Mellon UniversityCarnegie Mellon University
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VA

Intern AI Engineer specializing in agentic systems and full-stack products

San Francisco, CA2y exp
Snapp AIUniversity of Washington
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Azalea Bailey - Intern Machine Learning Engineer specializing in LLM agents and RAG systems in San Francisco, CA

Intern Machine Learning Engineer specializing in LLM agents and RAG systems

San Francisco, CA3y exp
AutodeskUC Berkeley
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MC

Senior Machine Learning Engineer specializing in MLOps and LLM/Agentic AI systems

Gaithersburg, MD7y exp
AstraZenecaGeorgia Tech
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Kush Patel - Intern Controls Software Engineer specializing in robotics and autonomous vehicles in Mountain View, CA

Intern Controls Software Engineer specializing in robotics and autonomous vehicles

Mountain View, CA2y exp
Kodiak RoboticsUniversity of Michigan
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AT

Mid-level Generative AI Engineer specializing in LLM automation, RAG, and NLP microservices

6y exp
Goldman SachsUniversity of Dayton
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ME

Principal AI Platform Architect specializing in agentic AI and enterprise LLM infrastructure

Sunnyvale, CA21y exp
CrowdStrikeUniversity of Massachusetts Boston
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SV

Mid-level Software Engineer specializing in AI platforms and backend systems

Raleigh, NC4y exp
McKinsey & CompanyGeorge Washington University
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SY

Mid-level Backend Software Engineer specializing in AI/LLM microservices

4y exp
RocheUSC
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KM

Executive technology leader specializing in AI, cloud, and healthcare transformation

San Francisco, CA26y exp
eGlobalDoctors
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SK

Sammed Kamate

Screened

Mid-level Software Engineer specializing in FinTech and AI/LLM systems

3y exp
JPMorgan ChaseUC San Diego

Backend engineer with experience in both regulated healthcare and finance: built a multi-agent RAG system to generate FDA regulatory approval documents for biomedical devices, improving retrieval accuracy via hybrid search (semantic + BM25) and hierarchical chunking. Previously at JPMorgan Chase, led a Java microservice refactor and AWS migration using Elasticsearch-first patterns, caching, and safe rollout strategies (parallel runs, canary, blue-green) in asset/wealth management.

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Rohith Sadanala - Mid-level Machine Learning Engineer specializing in Generative AI and MLOps in Missouri, USA

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

Missouri, USA3y exp
AirbnbUniversity of South Florida

LLM/agent engineer who has shipped production RAG chatbots in sustainability-focused domains, including a packaging recommendation assistant that standardized messy user inputs and used Pinecone-backed retrieval over product/regulatory data. Experienced orchestrating end-to-end ML workflows with Airflow and AWS Step Functions/Lambda, emphasizing reliability (property-based testing, circuit breakers, OpenTelemetry) and measurable performance (latency/cost). Partnered closely with non-technical leadership to ship 3 weeks early, driving adoption by 150+ businesses and ~20% reported waste reduction.

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Pavan Kishore Ramavath - Intern Software Engineer specializing in machine learning and backend systems in Leesburg, VA

Intern Software Engineer specializing in machine learning and backend systems

Leesburg, VA1y exp
Clinpex LLCNYU

Built an AI-powered medical coding system at Clinpex that mapped 88,000+ clinical terms to standardized codes, achieving about 86% accuracy and cutting manual review time by over 80%. Brings hands-on backend ownership in a healthcare AI setting, with experience using semantic retrieval, LLM validation, and human review to handle ambiguity and reliability in a regulated domain.

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CS

Mid-level Applied AI Engineer specializing in LLM infrastructure and model optimization

San Jose, CA3y exp
AMDUSC

LLM engineer who has deployed privacy-preserving, real-time workplace risk monitoring over massive enterprise chat/email streams, tackling latency, hallucinations, and extreme class imbalance with model benchmarking, RAG + fine-tuning, and a pre-filter alerting layer. Also built an agentic legal contract drafting system (Jurisagent) using LangGraph/LangChain with deterministic multi-agent control flow, structured outputs, and reliability-focused evaluation/telemetry.

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JJ

Intern Generative AI Engineer specializing in RAG and multi-agent systems

Chicago, IL2y exp
NeuraFlashUniversity of Chicago

Built and deployed a production RAG-based multi-agent chatbot during an internship to help consultants answer client questions and guide users through new IT systems with step-by-step instructions. Demonstrates hands-on experience with LangGraph/LangChain/Google ADK, unstructured document parsing and chunking for RAG, and a reliability-first approach to agent workflows (metrics, fallbacks, human-in-the-loop, guardrails).

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Shruti Krishnagiri - Executive Engineering Leader & Technical Founder specializing in AI automation platforms in San Francisco Bay Area, California

Executive Engineering Leader & Technical Founder specializing in AI automation platforms

San Francisco Bay Area, California20y exp
BundledStanford University

Founder/CTO who built and shipped a consumer subscription-bundling platform end-to-end (architecture, implementation, testing) and scaled it to thousands of customers and major partners. Previously led a major reliability overhaul at Chan Zuckerberg Initiative for a Google-Docs-like ed-tech product—boosted observability, introduced incident management, and migrated to a Docker-based scalable architecture. Heavy user of AI tools (Cursor/Claude) for development, testing, and code review, with a strong bias toward lightweight, fast-moving execution.

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KC

Kevin Cruz

Screened

Senior Gen AI Engineer specializing in agentic LLM systems

Tempe, AZ15y exp
OpendoorUSC

Built and owned end-to-end production systems for a healthcare platform, including a predictive task recommendation feature (React + FastAPI + ML on AWS ECS) that cut backlog 20% and saved coordinators ~10 hours/week. Also productionized an AI-native RAG system (vector DB + LLM) delivering 40% faster query resolution, and led phased modernization of a monolithic FastAPI service into async microservices using feature flags and canary releases.

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TW

Tanny Wang

Screened

Mid-Level Software Engineer specializing in AI agents and Generative AI

San Diego, CA8y exp
ServiceNowUC San Diego

Backend engineer who built and evolved an internal multi-agent AI research platform (Electron + FastAPI) integrating OpenAI, focused on fast, reproducible experimentation with strong observability and run metadata for debugging. Has led incremental backend refactors with feature flags and parallel validation, and brings production-grade access control expertise from ServiceNow (table/field ACLs and row-level-style enforcement).

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KL

Kevin Lim

Screened

Intern Software Engineer specializing in data science and machine learning

Remote2y exp
StylistGemUC Berkeley

Backend engineer with hands-on experience building Flask REST APIs (auth, CRUD, S3 media uploads) and driving measurable Postgres/SQLAlchemy performance gains (p95 reduced to 200–400ms by eliminating N+1s and switching to keyset pagination). Implemented multi-tenant isolation with strict tenant scoping plus Postgres RLS, and built an OpenAI-powered quiz generation pipeline using queued workers, structured JSON outputs, and Celery/Redis optimizations to stabilize high-throughput workloads.

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ML

Ming-Kai Liu

Screened

Junior AI Engineer specializing in LLM pipelines, RAG, and computer vision

Raleigh, NC2y exp
Citrus OncologyUC San Diego

Built and deployed an on-prem, HIPAA-compliant LLM pipeline for oncology-focused clinical note generation and decision support, emphasizing grounded differential diagnosis and explainable reasoning via RAG to reduce hallucinations. Also created a LangGraph-based multi-agent academic paper search system integrating Tavily, arXiv, and Semantic Scholar with an orchestrator that routes tasks to specialized sub-agents.

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CS

Intern Data Scientist specializing in generative AI and forecasting

San Francisco, CA5y exp
Aurora AIUniversity of Chicago

ML/NLP practitioner working across healthcare and business/finance use cases: currently fine-tuning a domain-specific Llama 3.1 model for safe reasoning over EHRs/clinical notes using RAG + RL/DPO and RAGAS-based evaluation. Has built UMLS-driven entity normalization pipelines with quantified quality gains and developed embedding/vector-DB systems (FAISS) for semantic matching and forecasting/recommendation applications at Aurora AI and Banxico.

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VD

vikhyath D

Screened

Mid-Level Software Development Engineer specializing in distributed microservices on AWS

Dallas, TX5y exp
AmazonUniversity of North Texas

LLM/agent engineer who has shipped multiple autonomous, multi-step agents to production (document-to-SOP conversion, test generation, code generation) using a custom Python DAG orchestrator with persistent state, tool-calling permissions, and structured outputs (Pydantic/JSON Schema). Demonstrates strong production hardening practices—semantic contracts, golden-dataset prompt regression tests, circuit breakers, and multi-level monitoring—and delivered large productivity wins (34 hours of manual writing reduced to ~20 minutes review; ~15–20 engineering hours/week saved).

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