Vetted GPT-4 Professionals

Pre-screened and vetted.

GO

Principal AI Architect specializing in GenAI, agentic systems, and RAG

Dallas, Texas13y exp
PwCUC Berkeley
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AD

Senior Data Scientist specializing in GenAI and LLM systems for financial services

New York, NY11y exp
SimCorpUC Berkeley
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HS

Mid-level Machine Learning Engineer specializing in GenAI, forecasting, and MLOps

Pittsburgh, PA3y exp
CalixCarnegie Mellon University
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JT

Senior AI/ML Engineer specializing in healthcare LLMs and conversational AI

Dublin, OH13y exp
ReliantColorado College
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RI

Senior AI/ML Engineer specializing in healthcare and fintech AI systems

San Mateo, CA8y exp
Notable HealthcareUniversity of California
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SV

Mid-level Software Engineer specializing in distributed systems and FinTech platforms

Seattle, WA7y exp
TikTokUniversity of Michigan-Dearborn
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RG

Mid-level Machine Learning Engineer specializing in fraud detection and recommendations

Bay Area, CA6y exp
StripeBinghamton University
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JB

Senior Software Engineer specializing in cloud-native systems and Generative AI

Miami, FL14y exp
MicrosoftUniversity of Florida
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MN

Senior AI/ML Engineer specializing in NLP, computer vision, and MLOps

Ohio, USA10y exp
Pixolat LLC
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YY

Yue Yang

Screened

Intern Data Scientist specializing in GenAI (LLMs, RAG) and ML model optimization

Sunnyvale, CA1y exp
SynopsysColumbia University

Built and deployed a production LLM-powered risk assistant for KPMG and Freddie Mac that lets analysts query a confidential Neo4j risk graph in natural language (no Cypher), turning multi-day analysis into minutes with traceable, cited answers. Implemented rigorous guardrails, deterministic verification, RBAC/security controls, and a full eval/observability stack, cutting query error rate by ~50% and iterating through weekly UAT with non-technical risk analysts.

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HR

Mid-level Data Analytics professional specializing in BI, data engineering, and applied AI

California, USA6y exp
AmazonSan Jose State University

Built GenMedX, a multi-module clinical AI system for emergency department decision support spanning triage prediction, diagnosis, medication Q&A, and visit summarization. Stands out for combining medical LLM fine-tuning, RAG, and rigorous evaluation/monitoring to drive a major triage recall improvement from 38.5% to 76.6%, with a strong focus on safety, edge-case detection, and production reliability.

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PV

Praveen V

Screened

Mid-Level Software Engineer specializing in Generative AI and RAG systems

Remote, USA5y exp
MetaUniversity of North Carolina at Charlotte

Built a production RAG-based natural-language-to-SQL system at Global Atlantic to replace slow, expensive manual analytics ticket workflows, focusing heavily on retrieval quality and measurable evaluation (200-question ground-truth set; recall@5 improved 0.65→0.78 via semantic chunking). Also built a custom MCP-style agent orchestrator for a personal project (arxiv-ai) to improve flexibility and Langfuse-aligned observability, and has hands-on experience with LangGraph, CrewAI, and n8n.

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Ranjani Salla - Mid-level AI/ML Engineer specializing in LLMs, FinTech, and Healthcare IT in USA

Ranjani Salla

Screened

Mid-level AI/ML Engineer specializing in LLMs, FinTech, and Healthcare IT

USA5y exp
StripeClark University

Built production GenAI systems in both healthcare and financial services, including a Verily clinical platform and an Accenture financial Q&A product. Stands out for combining advanced RAG, fine-tuning, safety evaluation, and infrastructure engineering to deliver measurable gains in engagement, groundedness, hallucination reduction, and cost efficiency.

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SJ

Intern Applied AI/Software Engineer specializing in computer vision and full-stack platforms

San Francisco Bay Area, CA1y exp
BoschCarnegie Mellon University

Built production LLM systems focused on reliability and safety, including a plain-English deployment tool that generates validated plans and provisions to Kubernetes while preventing unsafe actions via schema enforcement and plan/execute separation. Also created multi-LLM workflows (LangGraph) and stakeholder-friendly demos at Bosch, including a PyQt/FastAPI/CUDA app comparing SAM2 vs SAMWISE for on-device object detection with intuitive UX for business users.

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CS

Chappidi Sasi

Screened

Mid-level Machine Learning Engineer specializing in GPU-accelerated LLM training and inference

Bay Area, CA5y exp
NVIDIAWebster University

ML/LLM engineer with production experience building a multi-GPU LLM inference platform using TensorRT and vLLM, achieving ~40% p95 latency reduction through batching/KV caching, quantization, and CUDA/runtime tuning. Also has end-to-end orchestration experience (Kubernetes, Airflow) and has delivered real-time fraud detection systems at Accenture in close collaboration with non-technical risk and product stakeholders.

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SP

Mid-level AI Engineer specializing in machine learning and healthcare research

Philadelphia, PA4y exp
The Wharton School, University of PennsylvaniaUniversity of Pennsylvania

Backend engineer with end-to-end ownership of scientific and AI-powered systems, including neuron imaging pipelines at Monell Chemical Senses Center and an LLM-based structured information extraction platform for Wharton and PSG. Stands out for turning messy, compute-heavy workflows into reliable production backends with measurable impact, including saving researchers over 50 hours per week.

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BW

Boyun Wang

Screened

Junior AI Agent Engineer specializing in regulated healthcare software

Berkeley, CA3y exp
Echelon DiagnosticsUC Berkeley

Built and deployed PIKA, an internal multi-agent platform for FDA-regulated software development, owning it from concept through production. The candidate combines strong full-stack engineering with rigorous LLM orchestration, human-in-the-loop controls, and production eval systems, delivering measurable impact: 3x more design issues caught, ~90% fewer false positives, and ~40% efficiency gains on documentation-heavy workflows.

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TI

Mid AI/ML Engineer specializing in LLM systems and Generative AI

Texas, USA4y exp
StripeUniversity of North Texas

Built and owned an LLM support copilot at Stripe focused on improving agent ticket resolution. Designed the backend and ML system end to end, using RAG, Redis caching, hybrid vector search, and LoRA fine-tuning to achieve 40% lower latency and 22% higher response accuracy, with continuous quality monitoring via Ragas and related evaluation frameworks.

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NP

Mid-level AI/ML Engineer specializing in LLMs, MLOps, and recommendation systems

NJ, USA5y exp
WaymoWebster University
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Mavneet Kaur - Junior Software Engineer specializing in full-stack FinTech and AI-powered systems in Manhattan, NY

Junior Software Engineer specializing in full-stack FinTech and AI-powered systems

Manhattan, NY2y exp
Goldman SachsStony Brook University
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Sona Krishnan - Junior Software Engineer specializing in AI/ML systems and LLM-powered document automation in Princeton, New Jersey

Junior Software Engineer specializing in AI/ML systems and LLM-powered document automation

Princeton, New Jersey2y exp
InvisiblCloudCornell University
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YK

Junior Machine Learning Engineer specializing in LLMs and retrieval-augmented generation

Pittsburgh, PA3y exp
PanasonicCarnegie Mellon University
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