Vetted Model Evaluation Professionals

Pre-screened and vetted.

YK

Mid-level AI Backend Engineer specializing in LLM applications and scalable ML services

IL, USA5y exp
DoorDashIllinois Institute of Technology
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VB

Mid-level Software Engineer specializing in backend systems and LLM applications

Chicago, IL4y exp
Easley-Dunn ProductionsUniversity of Illinois Urbana-Champaign
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SC

Mid-level AI Backend Engineer specializing in LLM applications and scalable ML services

WA, USA3y exp
DoorDashSanta Clara University
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BD

Mid-level Software Engineer specializing in agentic AI and RAG systems

3y exp
ManulifeUC Berkeley
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DO

Mid-level Software Engineer specializing in backend systems, cloud microservices, and AI-driven automation

Bellevue, WA4y exp
LTIMindtreeArizona State University
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KK

Mid-level AI/ML Data Engineer specializing in analytics, ML pipelines, and LLM applications

Dallas, Texas4y exp
Capital OneUniversity of Texas at Dallas
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SG

Mid-level AI Engineer specializing in LLM orchestration and production AI systems

Monroe, NJ5y exp
Shri Sai Tech LLCUniversity of Kansas
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PC

Mid-level AI Backend Engineer specializing in LLM applications and scalable ML systems

Virginia, USA6y exp
DoorDashWashington University of Virginia
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AF

Principal AI/ML Engineer specializing in LLM and NLP platforms

Tampa, FL11y exp
RivianFlorida State University
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AA

Senior AI/ML Engineer specializing in GenAI, LLMs, NLP, and MLOps

Manhattan, NY10y exp
AssemblyAI
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Rubeena Riyas - Senior AI Engineer specializing in LLM agents, RAG, and scalable data platforms

Rubeena Riyas

Screened References

Senior AI Engineer specializing in LLM agents, RAG, and scalable data platforms

7y exp
CloneForceBoston University

ML/data engineer who owned an end-to-end production sales analytics pipeline at 15,000+ user scale, delivering ~50% compute reduction, ~80% faster reporting, and ~$1.2M impact. Also shipped a production RAG-based AI assistant over internal BigQuery/docs with evaluation metrics and safety guardrails, and built shared Python libraries to standardize reliability and accelerate engineering teams.

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MM

Max Matkovski

Screened

Junior Machine Learning Engineer specializing in data pipelines and applied AI

San Francisco Bay Area, CA3y exp
Ontra MobilityGeorgia Tech

Built a production AI agent for phishing fraud detection using n8n orchestration, Claude (Sonnet 4/MCP), VirusTotal, and JavaScript formatting to generate and deliver email-based reports via Gmail. Has experience evaluating detection accuracy against known examples, iterating via feedback, and presenting AI solutions to non-technical teams.

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SS

Shayan Shokri

Screened

Intern ML Engineer specializing in LLMs and NLP research

Seattle, WA0y exp
TruvetaCity University of New York

ML/LLM practitioner with experience at Truveta building an LLM-based evaluation framework; identified non-overlapping evaluator failure modes and proposed an ensemble approach that enabled scaling training data and drove ~5% performance gains across multiple internal projects. Strong focus on robustness to distribution shift (augmentation/domain adaptation/meta-learning) and production reliability via monitoring, drift detection, and safe fallbacks.

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Syed Daim Ali - Intern Software Engineer specializing in FinTech and AI platforms in Sunnyvale, CA

Syed Daim Ali

Screened

Intern Software Engineer specializing in FinTech and AI platforms

Sunnyvale, CA0y exp
ZoofiUC Berkeley

Systems-focused engineer who built an OS kernel with multithreading, priority scheduling, system calls, and synchronization primitives, and debugged race conditions end-to-end. While not yet hands-on with ROS/SLAM, they clearly connect low-level concurrency and scheduling decisions to deterministic, reliable robotics-style real-time workloads.

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HH

Mid-level Applied AI Engineer specializing in ML systems, MLOps, and industrial analytics

Toronto, Canada5y exp
FreelanceUniversity of Waterloo

Industrial AI/ML practitioner with experience deploying real-time monitoring and anomaly detection in a regulated Sanofi vaccine manufacturing facility, including root-cause workflows, logging/alerting, and SOP-aligned validation—achieving ~90% faster anomaly detection. Also built Python/NLP-style automation to accelerate instrumentation & control documentation (~40% faster) and delivered end-to-end predictive analytics for an agri-food operations/distribution client using close operator and leadership feedback loops.

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NC

Senior Full-Stack Engineer specializing in AI and cloud-native applications

Lakeland, FL8y exp
Revscale AIUC Irvine

Built and shipped a production LLM-powered internal developer tool that accelerated code reviews by about 30% while maintaining reliability through modular orchestration, validation, and monitoring. Demonstrates strong practical depth in agent architecture, backend workflow orchestration, and observability for non-deterministic AI systems, with concrete examples of reducing agent errors by 60%.

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PK

Staff Machine Learning Engineer specializing in LLM agents and ML systems

San Fransico, CA6y exp
InfosysGeorgia State University
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Deenanadh Polavarapu - Mid-level Data Scientist specializing in machine learning, analytics, and cloud data pipelines in Herndon, VA

Mid-level Data Scientist specializing in machine learning, analytics, and cloud data pipelines

Herndon, VA3y exp
EpsilonTrine University
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YC

Intern Software Engineer specializing in AI agents, RAG, and full-stack systems

1y exp
Peking UniversityUniversity of Michigan
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