Vetted LangGraph Professionals

Pre-screened and vetted.

SL

Senior Data Engineer specializing in Machine Learning and Healthcare Data Platforms

WoodBridge, VA12y exp
Uncommon AnalyticsUniversity of Phoenix
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AS

Senior Software Engineer specializing in AI-native full-stack platforms

6y exp
The Citizens ProjectPenn State University
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AM

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

Frisco, TX3y exp
TelecomgatewayUniversity of Texas at Arlington
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GJ

Mid-level Realtime AI Systems Engineer specializing in voice and streaming infrastructure

San Francisco, CA3y exp
RimeCMR Institute of Technology
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AV

Senior Full-Stack Engineer specializing in Python, AI, and LLM-powered platforms

McKinney, TX10y exp
Wand AINational University of Computer and Emerging Sciences
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MK

Senior Software Engineer specializing in AI/ML systems

Stafford, VA7y exp
Intellirent
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VA

Mid-level AI Engineer specializing in agentic LLM workflows and RAG systems

MI, USA3y exp
University of Michigan-Dearborn
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MA

Senior Software Engineer specializing in AI/ML and backend systems

Stafford, VA7y exp
Innowise
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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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JS

Jatin Soni

Screened

Mid-level Software Engineer specializing in Generative AI and scalable backend systems

Corona, CA3y exp
WellomyTechCalifornia State University, Los Angeles

Backend/AI engineer with production experience in legal tech: built a high-scale licensing/subscription API (FastAPI/Postgres/Stripe) and shipped a RAG-based chatbot for an eDiscovery platform. Designed a robust legal document ingestion workflow that processes thousands of documents into a searchable vector index with clear retry/escalation logic, and has demonstrated measurable Postgres performance wins (200ms to 10ms) using EXPLAIN ANALYZE and composite indexing.

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Prasad Sadineni - Mid-level AI Engineer specializing in LLM fine-tuning, RAG, and agentic systems in Nashville, TN

Mid-level AI Engineer specializing in LLM fine-tuning, RAG, and agentic systems

Nashville, TN6y exp
HS Solutions.INCEastern Illinois University

Building and deploying production in-house, domain-specific LLM chatbots for enterprises that cannot use third-party GPT tools due to internal policies. Focused on reducing latency and improving domain awareness using fine-tuning, continual learning, and advanced RAG/agent retrieval strategies, with experience orchestrating multi-agent workflows via LangChain/LlamaIndex and vector DBs (FAISS, Weaviate, Chroma).

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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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SK

Junior AI/Software Engineer specializing in NLP, RAG, and resume parsing

Remote2y exp
AryticTexas A&M University-Corpus Christi

Backend/AI engineer who built and refactored a production RAG system over IRS Form 990 filings for 60 nonprofits, using a dual-path architecture (deterministic financial ranking + TF-IDF semantic retrieval) to keep latency sub-2s and reduce hallucinations. Demonstrates strong API craftsmanship in FastAPI (contract-first, OpenAPI-driven) plus production-grade security for multi-tenant systems (JWT, RBAC, Supabase-style RLS) and careful migration practices (feature flags, traffic mirroring, incremental rollout).

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VM

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

4y exp
AllyzentUniversity of Central Florida

Built and productionized LLM-powered workflows that generate contextual insights from structured financial data, including prompt/retrieval design, data standardization, and reliability controls like rate limiting and batching. Also diagnosed and fixed real-time failures in an automated order validation system using logs/metrics, staging reproduction, edge-case handling, retries, and alerting, while supporting sales/customer teams with demos, scripts, and FAQs to drive adoption.

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AV

Intern Software Engineer specializing in backend, AI, and full-stack web systems

San Ramon, CA0y exp
Antela.aiCalifornia State University, East Bay

Software engineer building AI-powered automation features in commercial real estate, including brochure generation and property listing workflows. They combine FastAPI/Redis/Celery backend architecture with multi-agent LLM design, structured prompting, testing, and production monitoring, and are now actively learning RAG and vector databases to make outputs more personalized.

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SP

Mid-level Full-Stack Software Engineer specializing in cloud-native web apps and AI agents

NH, USA4y exp
Peak Play AI SportsRivier University

Full-stack system analyst/programmer at PeakPlay Sports (startup) who built an AI "coach" product end-to-end in ~2 months, using a LangGraph-orchestrated multi-agent architecture with a FastAPI backend. Shipped production RAG grounded in athlete history (OpenAI embeddings + vector store) with guardrails and a structured eval loop (golden set + LLM-judge + human review) to improve engagement and reduce hallucinations.

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TK

Junior Full-Stack Developer specializing in React, Node.js, and AI/LLM integrations

College Park, Maryland2y exp
LeafNBeyondUniversity of Central Oklahoma

Full-stack developer who owned and shipped an end-to-end web application for LeafNBeyond (React/Node/Postgres), deployed to production at leafnbeyond.com, with reported 35% sales growth and strong UX feedback. Also built Azure-based ETL pipelines using lakehouse/medallion architecture with validation and retry logic, and has AWS fundamentals from a master’s coursework (EC2, RDS, IAM, load balancing).

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SaiDheerajReddy Gadikota - Mid-level AI Engineer specializing in agentic systems and enterprise LLM platforms in USA, USA

Mid-level AI Engineer specializing in agentic systems and enterprise LLM platforms

USA, USA4y exp
XnodeUniversity of Bridgeport

Current AI engineer at a startup who has spent the last year architecting multi-agent systems for software development workflows. Stands out for combining LLM speed with engineering discipline—using tools like Pydantic, LangGraph, and LangChain to build reliable, production-ready agent workflows with validation, routing, and retry logic.

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PS

Junior AI/ML Engineer specializing in GenAI, RAG, and full-stack ML systems

Lawrence, Kansas3y exp
University of KansasUniversity of Kansas

Built a university campus assistant chatbot (BabyJ/WWJ) using RAG and agentic routing with a FastAPI + React stack and JWT auth, focusing heavily on production concerns like latency and reliability. Uses techniques like speculative prefetching, smart intent routing, and rigorous eval/testing (golden sets, regression, edge cases) while collaborating closely with campus admin/advising teams to iterate based on real user feedback.

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ES

Junior Software & AI Engineer specializing in cloud-based AI applications

Argentina2y exp
Pi ConsultingNational Technological University

AI/LLM engineer with production experience delivering large-scale RAG and voice-agent solutions for banking clients. Implemented a SharePoint-based, non-technical content update workflow with incremental hourly ingestion into a vector DB, and actively contributes to Microsoft’s open-source GPT-RAG accelerator while using modern orchestration (Semantic Kernel, LangGraph) and LLM observability/evaluation tooling.

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MG

Mid-Level Full-Stack Software Engineer specializing in web platforms and microservices

Ellicott City, MD3y exp
Srasys Inc.Indiana University Bloomington

Full-stack engineer at Srasys Inc. who built and owned production payments/checkout for an e-learning platform serving 5,000+ users using Next.js App Router + TypeScript. Deep focus on correctness and reliability (Stripe webhooks, signature validation, DB-level idempotency) plus measurable performance wins (~40% latency reductions) through Postgres indexing/EXPLAIN ANALYZE and Redis-backed caching with CloudWatch monitoring.

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AV

Mid-level Full-Stack Software Engineer specializing in SaaS and AI-enabled platforms

Remote, USA3y exp
LotSync AIUniversity of Louisiana at Lafayette

Built and shipped production AI features in the automotive dealership domain, including an end-to-end computer-vision damage detection system for trade-ins and a tool-calling, RAG-enabled LotSync AI Agent that answers inventory/VIN questions using strict schemas and internal APIs to avoid hallucinations. Also developed a Dagster + Oracle automated reporting pipeline as a Graduate Research Assistant, supporting 15+ university departments with normalized, reliable ETL workflows.

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Lalith Sagar Kambala - Junior Full-Stack Software Engineer specializing in AI-powered SaaS in United States, USA

Junior Full-Stack Software Engineer specializing in AI-powered SaaS

United States, USA1y exp
Todaiyo.aiUniversity of Central Missouri

Worked on an AI-adjacent search/results product with a React front end and an API-driven backend, focusing on scalability and performance. Emphasizes decoupled JSON API architecture, React rendering optimizations (useMemo/useCallback), and large-dataset techniques like virtualization, plus strong user-issue triage via log analysis and edge-case fixes in query handling/ranking.

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PG

Entry-level Software Engineer specializing in AI/ML and full-stack systems

Dover, DE1y exp
Alvora AIUniversity at Buffalo

Internship-built full-stack systems spanning HR employee-record portals and internal data-quality dashboards (Flask + SQL + React), emphasizing data integrity and rapid MVP iteration. Also implemented Flask microservices with RabbitMQ for distributed task processing, addressing duplication/ordering issues with idempotency, durable queues, and correlation-ID logging; delivered quantified productivity gains for HR teams.

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