Vetted Multi-Agent Systems Professionals

Pre-screened and vetted.

CT

Chih-Hao Tsai

Screened

Entry-level Robotics Research Assistant specializing in multi-agent autonomy and reinforcement learning

Mesa, Arizona1y exp
BELIV Lab, Arizona State UniversityArizona State University

ROS2/Python robotics engineer who led a 4-person team building a simulated multi-robot warehouse system (SLAM + NAV2 + centralized task allocation) in Gazebo Ignition, including a distance/priority-based controller that reduced task completion time by ~30%. Also has hands-on real-time debugging/tuning experience for both mobile robots and a MyCobot 600 Pro manipulator, plus simulation work in CARLA using RL (TD3) and Social-LSTM for pedestrian behavior modeling.

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SK

Intern Software Engineer specializing in backend systems and Generative AI

Colorado, USA2y exp
Sports MediaIllinois Institute of Technology

Built and deployed a scalable, production-ready LLM knowledge assistant using a RAG architecture (LangChain + vector store/FAISS) to replace keyword search for internal documents. Demonstrates hands-on expertise in hallucination reduction and retrieval quality improvements through semantic chunking, similarity tuning, prompt design, and human-in-the-loop validation, plus strong stakeholder communication via demos and visual explanations.

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WH

Wessam Hassan

Screened

Junior AI Engineer specializing in LLM agents, RAG systems, and on-chain automation

Denver, Colorado2y exp
Tetto.ioUniversity of Colorado Boulder

AI engineer who shipped a production KYC facial liveness/recognition pipeline (10k+ monthly verifications), including an on-prem, GPU-hosted Qwen3-VL vision-language fallback to detect spoofing/replay attacks. Also helped build a deterministic multi-agent orchestration layer powering a marketplace with Solana on-chain payments, abstracting blockchain complexity behind an API, and has experience translating real-world needs from non-technical stakeholders (construction) into practical document-reading solutions.

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AS

Junior AI/Software Engineer specializing in LLM agents, RAG, and full-stack ML systems

Austin, TX2y exp
Gauntlet AIVirginia Tech

Backend engineer who built an Emergency Alert System with Virginia Tech for the City of Alexandria, focusing on real-time ingestion, secure dashboards, and AI-assisted prioritization. Emphasizes high-stakes reliability with guardrails (hybrid rules+LLM, confidence-based fallbacks), scalable async processing, and defense-in-depth security (JWT/RBAC plus database row-level security).

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Akshay Bharadwaj Kunigal Harish - Mid-level Machine Learning Engineer specializing in NLP, computer vision, and LLM systems in Boston, MA

Mid-level Machine Learning Engineer specializing in NLP, computer vision, and LLM systems

Boston, MA5y exp
Perceptive TechnologiesNortheastern University

Built a production multi-agent cybersecurity defense simulator orchestrated with CrewAI, combining Red/Blue team LLM agents, a RAG runbook retriever, and an RL remediation agent trained via state-space simplification and reward shaping for rapid incident response. Also partnered with quant analysts and fund managers to deliver an automated trading and portfolio management system using statistical methods plus CNN/LSTM models, reporting up to 15% weekly ROI.

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Romain Delamare - Senior Full-Stack Software Engineer specializing in microservices and web applications in Montpellier, France

Senior Full-Stack Software Engineer specializing in microservices and web applications

Montpellier, France10y exp
IdealysUniversité Grenoble Alpes

Developer who treats AI as a junior collaborator, using it to accelerate mobile app feature development and UI/UX iteration while retaining architectural and implementation ownership. Has hands-on experience with specialized agents, multi-agent collaboration, and supervisor-agent patterns, suggesting practical fluency in AI-native development workflows.

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DN

Mid-level AI Engineer specializing in LLMs, agentic AI, and machine learning platforms

San Jose, CA3y exp
XNode.AIFresno State

New grad focused on AI systems and agent-based development, with hands-on experience using LLMs as a coding partner and building RAG-based document processing workflows. Stands out for practical experimentation with semantic chunking, retrieval optimization, and multi-agent architectures, including redesigning a RAG workflow by adding a reasoning agent to improve response accuracy and reliability.

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NK

Intern Data Scientist specializing in Generative AI and NLP

United States2y exp
HCLTechUniversity of New Haven

Backend/AI engineer with internship experience building an AI-powered financial insights platform (FastAPI, Redis, BigQuery) and prior HCL experience leading a monolith-to-microservices refactor (Flask, Kafka) using blue-green deployments. Demonstrates strong performance/security focus (OAuth/JWT/RBAC, encryption) and measurable impact on latency, downtime, and ML model reliability; MVP was submitted to Google’s accelerator program.

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Harsh Chauhan - Junior AI Engineer specializing in Generative AI, RAG, and NLP in Remote, US

Harsh Chauhan

Screened

Junior AI Engineer specializing in Generative AI, RAG, and NLP

Remote, US3y exp
TickerIndiana University Bloomington

AI/LLM engineer who has shipped a production RAG platform at Ticker Inc. on GCP (Qdrant + Postgres) delivering sub-second retrieval over 550k+ items, with measurable gains in latency and answer quality (HNSW optimization, MMR re-ranking). Also built an asynchronous LangChain/LangGraph multi-agent research system (10x faster cycles) and partnered with Indiana University doctors on synthetic patient records and ML error analysis using clinician-friendly F1/loss dashboards.

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Moore Macauley - Intern Backend Developer specializing in AI, multi-agent systems, and computer vision

Intern Backend Developer specializing in AI, multi-agent systems, and computer vision

0y exp
True Harmony AIUC Santa Cruz

Backend-focused Python engineer who built core systems for an AI beauty-advice product: converting facial-recognition landmarks into usable facial measurements and dynamically shaping chatbot context for personalized guidance. Also worked on high-volume data ingestion at AINVESTgroup, improving agent context selection via a RAG database when upstream tags were unreliable, and has strong Git/GitOps + automated testing practices from rapid-deadline delivery environments.

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AS

Mid-level Software Engineer specializing in mobile, AI/LLM, and healthcare apps

Buffalo, NY2y exp
University at Buffalo FoundationBinghamton University

Currently acts as a tech lead for a team of AI agents building a mobile application, with agents handling requirements, design, development, testing, documentation, and JIRA/Confluence updates. Stands out for combining multi-agent orchestration with strong human-in-the-loop review and a clear interest in AI governance and authorization controls.

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VS

Mid-level AI Systems Engineer specializing in agentic evaluation and multimodal voice agents

4y exp
AGI IncUniversity at Buffalo

Co-founder at Skoolive who built a multi-agent LLM application to help users understand complex research papers (including PDF interaction and flowchart-style representations), moving from prototype to production using Gemini SDK and deployment to Runway. Also developed and demoed a web-agent benchmarking framework, running hands-on sessions with customer-facing teams to improve agent reliability and drive adoption.

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Vikram Sandigaru - Mid-level AI Engineer specializing in AI agents, RAG pipelines, and LLM evaluation in Boston, US

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

Boston, US3y exp
FounderWayNortheastern University

Built and shipped production LLM systems at Founderbay, including a low-latency voice agent and a graph-based multi-agent research assistant. Strong focus on reliability in real workflows—hybrid SERP + full-site scraping RAG, grounding guardrails, validation checkpoints, and transcript-driven evaluation—plus performance tuning with async FastAPI, Redis caching, and containerization. Also partnered with a non-technical ops lead to automate post-call follow-ups via call summarization, field extraction, and tool-triggered actions.

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VM

Vaibhavi More

Screened

Senior Full-Stack Engineer specializing in FinTech

Mumbai, India8y exp
Robosoft TechnologiesUniversity of Mumbai

Software candidate with hands-on experience using AI as a productivity multiplier across architecture, refactoring, testing, and code review. Has worked with LangChain-based multi-agent workflows to decompose complex engineering tasks for parallel execution, showing practical familiarity with emerging AI-native development patterns.

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PS

Puja Sridhar

Screened

Intern AI/ML Engineer specializing in LLMs, RAG, and agentic automation

Remote0y exp
Pennant EducationRutgers University

Built and deployed production NLP/LLM systems including a multilingual (5-language) health misinformation detection pipeline with latency optimization (batching/quantization/caching) and explainability (gradient-based attention visualizations). Experienced orchestrating end-to-end AI workflows with Airflow and Prefect, and partnering with customer support ops to deliver an AI agent for ticket summarization and priority classification with clear, measurable acceptance criteria.

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TM

Junior Data Engineer specializing in LLM agents and RAG pipelines

San Jose, CA3y exp
Texas A&M UniversityTexas A&M University

Built and deployed “ApartmentFinder AI,” a multi-agent system using Google ADK, Gemini, and Google Maps MCP to automate apartment shortlisting and commute-time analysis, cutting a 45–70 minute user workflow down to ~30 seconds. Also has strong delivery/process chops from serving as an SDLC Release Coordinator, managing 52+ releases and reducing SDLC issues by 84%.

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KV

Mid-level Software & ML Engineer specializing in agentic LLM systems and ML infrastructure

Remote4y exp
Cloud Systems LLCVirginia Tech

Built and deployed an LLM-to-SQL automation system in a closed/internal environment, using a retriever–reranker–validator architecture on Kubernetes with strong security controls (semantic + rule-based validation and RBAC), achieving 99% uptime and cutting manual query time ~40%. Also worked on genomic sequence classification and semantic search workflows, orchestrating data prep with Airflow, tracking/deploying with MLflow, and optimizing distributed multi-GPU training on a university Kubernetes cluster.

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Mohammed Syed - Mid-level AI Engineer & Researcher specializing in healthcare AI and multimodal LLM systems in Remote

Mohammed Syed

Screened

Mid-level AI Engineer & Researcher specializing in healthcare AI and multimodal LLM systems

Remote2y exp
University of ArizonaUniversity of Arizona

Backend/ML engineer focused on clinical AI transparency who built ShifaMind, an explainability-enforced clinical ML system using UMLS/MIMIC-IV/PubMed data with RAG, GraphSAGE, and cross-attention. Demonstrated strong production engineering via FastAPI API design and safe migrations (feature flags/shadow inference), plus HIPAA-aligned auth/RLS patterns; also delivered a real-time comet detection system reaching 97.7% accuracy.

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Arunim Samudra - Mid-Level Software Engineer specializing in LLM applications, RAG, and OCR automation in Austin, TX

Mid-Level Software Engineer specializing in LLM applications, RAG, and OCR automation

Austin, TX3y exp
Trellis CompanyTexas A&M University

At Trellis, built and shipped a production multi-agent, authenticated GenAI chatbot for sensitive financial account inquiries (loan/payment lookups), using dynamic model routing to control latency and cost while improving accuracy. Implemented prompt-injection defenses (Meta Prompt Guard), RAG with LangChain, and LLM-as-a-judge evaluation; the system cut manual support call volume by 40%+ and was refined through close collaboration with QA-driven user testing.

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Sanmith Kurian - Mid-level Software Engineer specializing in full-stack AI and FinTech systems in Remote, US

Mid-level Software Engineer specializing in full-stack AI and FinTech systems

Remote, US4y exp
FinInsights.aiUniversity of California

Candidate applies a design-first approach to AI-assisted software development, using multi-agent setups across frontend, backend, and testing. They described building a multi-agent resume tailoring system and leading development of an AI-powered assessment interface for generating descriptive and MCQ questions, with architectural decisions including Redux for complex state handling.

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AA

Mid-level Software Engineer specializing in AI/ML and Data Engineering

San Jose, CA4y exp
San José State UniversitySan José State University
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Ben Mathew - Senior Software Engineer specializing in AI, distributed systems, and computer vision in Melbourne, FL

Senior Software Engineer specializing in AI, distributed systems, and computer vision

Melbourne, FL4y exp
Florida Institute of TechnologyFlorida Institute of Technology
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EU

Junior NLP/ML Engineer specializing in LLMs and retrieval-augmented generation

Santa Clara, CA2y exp
University of California, Santa CruzUC Santa Cruz
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Pratik Jadhav - Mid-level AI Engineer specializing in LLMs, RAG, and agentic systems

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

5y exp
UnisCalifornia State University, Long Beach
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