Vetted AI Agents Professionals

Pre-screened and vetted.

VV

Mid-level GenAI/ML Engineer specializing in LLM agents, RAG, and document intelligence

5y exp
Elevance HealthWebster University
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SP

Mid-level AI/ML Engineer specializing in Generative AI agents and enterprise analytics

Jersey City, NJ5y exp
Wells FargoSaint Peter's University
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SG

Junior Full-Stack Engineer specializing in AI agents, RAG, and distributed systems

Boston, MA3y exp
Broad Institute of MIT and HarvardNortheastern University
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SB

Senior Salesforce Developer specializing in enterprise cloud architecture

Dallas, TX10y exp
GartnerCentral Michigan University
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AJ

Mid-level Data Engineer specializing in healthcare analytics and AI pipelines

Bethesda, MD5y exp
HiLabsNortheastern University
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CR

Senior Unity Developer specializing in VR/MR/XR

Los Angeles, CA
Magnit
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KP

KrishnaVarshith Pabbisetty

Screened ReferencesStrong rec.

Mid-level Backend Software Engineer specializing in Spring Boot, microservices, and cloud-native AI

Bay Area, CA4y exp
TemenosSan José State University

Backend engineer with experience modernizing a large-scale procurement platform at Jio Platforms by breaking a monolith serving 35 business units into Spring Boot microservices, improving uptime and cutting report latency ~30%. Also built high-concurrency FastAPI systems (200ms at ~500 concurrent users) with strong security (JWT/OAuth2/RBAC), event-driven Kafka integrations, and reliability patterns like exactly-once delivery for ~1M monthly triggers.

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BH

Bryan Holland

Screened ReferencesStrong rec.

Executive AI Product & Controls Engineering Leader specializing in agentic video editing and EV systems

SF Bay Area, CA11y exp
MAGICSEVEN AIUniversity of Michigan

Startup builder (MagicSeven) who designed and implemented a browser-based, agentic video editor end-to-end, including an AWS event-driven multimodal LLM “indexing” pipeline and an orchestration LLM agent for searching and manipulating footage. Demonstrates deep video file/codec knowledge plus practical production hardening of LLM workflows (format validation, plan/execute, S3-based state for debuggability).

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Jayadeep Nukala - Mid-level Software Engineer specializing in enterprise AI and FinTech integrations in San Francisco Bay Area, CA

Jayadeep Nukala

Screened ReferencesStrong rec.

Mid-level Software Engineer specializing in enterprise AI and FinTech integrations

San Francisco Bay Area, CA2y exp
KayaUniversity of Texas at Dallas

Built and deployed an enterprise AI testing solution at a startup, then customized and scaled it inside Citigroup over the course of a year to support 40+ projects and 1,000+ daily users. Brings hands-on production experience with multi-agent LLM workflows, RAG, enterprise deployment infrastructure, and real-world incident handling in AI-driven data pipelines.

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DC

dezhou chen

Screened

Mid-level AI Engineer specializing in LLM systems and GenAI products

Remote, USA4y exp
StealthUniversity of Illinois Urbana-Champaign

AI-focused product engineer working on LLM routing, prompt engineering, and multimodal API integrations at production scale. They describe improving system accuracy, latency, and token usage, fine-tuning an internal model to reduce third-party API dependence, and adding safety guardrails through prompt-injection testing and red-team evaluation.

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YS

Yash Sanjay Zaveri

Screened ReferencesStrong rec.

Junior Software Engineer specializing in backend systems and AI automation

Boston, MA2y exp
Northeastern UniversityNortheastern University

Built and deployed an AI Copilot for Healthful Telehealth that helps dietitians generate personalized meal plans using patient data and real-time clinical context. Stands out for owning the full lifecycle—from workflow discovery and ETL/RAG architecture to production incident response and post-launch stabilization—while delivering roughly 30% gains in retrieval accuracy and latency.

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KP

Krishnapriyanka Ponnaganti

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in agentic AI and production ML systems

Atlanta, GA4y exp
KKRGENAI Innovations LLCUC San Diego

ML/AI engineer with hands-on experience shipping production computer vision and GenAI systems, including a fabric defect detection platform that combined vision models with agentic LLM workflows to reach 89% human-inspector agreement at 200 ms latency. Also built a RAG-based code QA tool for developers and emphasizes production monitoring, evaluation, caching, and reusable Python service design.

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Rob Wlaschin - Director-level Engineering Manager specializing in AI platforms, FinTech, and Healthtech in Santa Clara, CA

Rob Wlaschin

Screened ReferencesStrong rec.

Director-level Engineering Manager specializing in AI platforms, FinTech, and Healthtech

Santa Clara, CA24y exp
Tifton PartnersCalifornia State University, Fresno

Serial entrepreneur building three distinct products: a context-aware AI chatbot, a connected TV companion-screen platform with an implementation client, and gamerogue.net, a mobile-optimized web-based virtual tabletop marketplace currently seeking funding. Brings hands-on fundraising experience, familiarity with the VC/accelerator ecosystem including YC, and a notably pragmatic approach to validating ideas based on existing market demand rather than speculative adoption.

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VV

Vaishnavi Veerkumar

Screened ReferencesStrong rec.

Mid-level AI Engineer specializing in GenAI and RAG systems

Boston, MA4y exp
VizitNortheastern University

AI engineer who built a production e-commerce system that analyzes product images alongside sales and demographic data to generate actionable creative recommendations, now used by 20+ clients. Also built orchestrated document/agent pipelines (Airflow, LangGraph) including a compliance drift detector auditing 401 compliance documents, with an emphasis on traceability, logging, and production integration.

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Joshua Smith - Executive engineering leader specializing in AI automation and enterprise transformation in Banks, OR

Joshua Smith

Screened ReferencesStrong rec.

Executive engineering leader specializing in AI automation and enterprise transformation

Banks, OR23y exp
NexGen Data SystemsAmerican Military University

Technology leader with deep accelerator and zero-to-one product experience across the Department of Defense, Fortune 100 enterprises, academia, and GovTech. Most notably, they built a seven-tier solution that generated over $10M in first-year savings and was adopted by 300+ DoD organizations, positioning them as a strong CTO-type operator for mission-driven startups and complex enterprises.

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AN

Director-level program leader specializing in digital transformation and Agile delivery

Springfield, MA14y exp
Language Bridge, LLCBoston College

Founded the Advanced Technology Team at XPO Logistics, a Fortune 500 transportation and logistics company, and worked closely with the investment team on technology demos and presentations. Especially motivated by zero-to-one company building, with a clear framework for assessing new ideas through differentiation and fast validation.

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Sangita Satapathy - Senior Full-Stack Engineer specializing in FinTech and AI applications in Las Vegas, NV

Senior Full-Stack Engineer specializing in FinTech and AI applications

Las Vegas, NV11y exp
SkillzOregon State University

Engineer with a pragmatic, production-focused approach to AI development, using tools like Copilot and ChatGPT to accelerate coding while maintaining strong engineering fundamentals. Has led a RAG-based multi-stage AI solution spanning retrieval, context building, and response generation, with an emphasis on validation, prompt quality, and reliability.

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RT

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

New York City, NY3y exp
WayfairStevens Institute of Technology

Wayfair ML/AI engineer who has shipped and operated production LLM systems for both internal analytics and customer-facing assistants. Stands out for combining strong RAG/retrieval engineering with production-grade platform work—improving trust, reducing latency by ~30%, and cutting ad hoc reporting demand by ~50%.

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NA

Naiya Adatiya

Screened

Mid-level Software Engineer specializing in backend systems and cloud-native microservices

Vermont, USA4y exp
Vermont Information ProcessingNortheastern University

Engineer with a process-driven approach to AI-assisted software development, focused on orchestrating where AI adds value while maintaining human review and verification. Has applied this in backend work such as an S3-based invoice pipeline and used multi-agent workflows to speed up large API refactors across many endpoints.

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HG

Mid-level Software Engineer specializing in AI and FinTech platforms

Seattle, WA5y exp
DreamStudioUniversity of Washington

LLM/agentic systems practitioner who specializes in moving demo-only assistants into reliable, observable, cost-controlled production services. Strong in real-time diagnosis of complex agent workflows (including tracing, loop detection, and guardrails) and in customer-facing enablement—running workshops, building tailored PoCs, and partnering with sales to close deals by proving reliability in high-risk pilots.

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Vineet Jujjavarapu - Mid-level Software Engineer specializing in cloud-native data platforms in College Park, MD

Mid-level Software Engineer specializing in cloud-native data platforms

College Park, MD3y exp
University of Maryland, College ParkUniversity of Maryland, College Park

Software engineer with hands-on experience using AI coding assistants and LangChain-based agent workflows in RAG/LLM projects. Stands out for combining practical multi-agent experimentation with strong grounding in system design, distributed systems, and production-minded validation of AI-generated outputs.

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PK

Senior GenAI/ML Engineer specializing in LLMs, RAG, and multimodal generative AI

USA4y exp
GE HealthCareFranklin University

LLM/RAG engineer with production deployments in highly regulated domains (Frost Bank and GE Healthcare). Built secure, explainable document-grounded Q&A systems using LoRA fine-tuning, strict RAG with confidence thresholds, and citation-based responses; also established evaluation/monitoring (golden QA sets, hallucination tracking, drift) and achieved ~40% latency reduction through retrieval/prompt tuning.

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