Vetted Schema Validation Professionals

Pre-screened and vetted.

Yashwanth J - Mid-level Software Engineer specializing in AI/ML and full-stack systems in Seattle, WA

Yashwanth J

Screened

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

Seattle, WA4y exp
AppleUniversity of North Texas

Engineer with Apple experience building LLM-powered internal workflow orchestration systems using Python, LangGraph, FastAPI, Redis, vector search, and Kubernetes. Stands out for a highly pragmatic, production-focused approach to agentic systems: deterministic state management, strong guardrails, observability, and human review for high-risk actions.

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JL

Joseph Lee

Screened

Staff Software Engineer specializing in cloud platforms for healthcare and financial workflows

Dallas, TX10y exp
OptumUniversity of Texas at Dallas

Backend/data engineer with Optum healthcare claims domain experience building high-reliability Python microservices (FastAPI/Kafka/Postgres) and AWS data platforms (EKS, Glue, Redshift). Demonstrated strong production ownership: fixed duplicate Kafka processing via transactional outbox/idempotency, scaled to millions of daily events, and delivered major SQL performance gains (40+ min to <5 min, ~60% CPU reduction). Seeking remote-only work; targets $130k base.

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AT

Antoine Tan

Screened

Senior Full-Stack Software Engineer specializing in workflow automation and healthcare AI

Remote12y exp
Rad AIUniversity of Florida

Backend/data engineer who has owned production Python APIs and high-throughput async workflows on AWS (FastAPI, Docker, ECS/EKS/Lambda) with mature reliability practices like idempotency, bounded retries, circuit breakers, and strong observability. Also built AWS Glue ETL into an S3/Redshift lakehouse and modernized legacy batch systems via parallel-run parity testing and feature-flagged migrations, including a SQL tuning win cutting a multi-minute query to under 10 seconds.

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Yash Jajoo - Senior Software Engineer specializing in AI and FinTech platforms in New York City, NY

Yash Jajoo

Screened

Senior Software Engineer specializing in AI and FinTech platforms

New York City, NY8y exp
Walter AINew York University

Built a production LLM pipeline at Walter AI that scans massive user inboxes, identifies financial newsletters, and extracts trading strategies into structured JSON for downstream paper-trading workflows. Stands out for combining agent architecture with strong production discipline—cutting scan time from 20 to 5 minutes, reducing LLM costs by 90%, and achieving 3-second P99 latency while handling messy, inconsistent email data at scale.

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OA

Omar Ali

Screened

Entry-level Data Scientist specializing in AI evaluation and analytics

San Francisco, CA1y exp
OpenAIUC San Diego

Built both traditional data infrastructure and LLM-powered product workflows, spanning a Python/SQL ETL deployment at Amazon and an adaptive learning system for their DataLingo platform. Particularly interesting for roles at the intersection of data engineering, applied AI, and customer-facing product delivery, with hands-on experience stabilizing probabilistic LLM systems in production.

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NH

Mid-level Full-Stack Engineer specializing in cloud-native data and enterprise platforms

USA5y exp
AmazonUniversity of Cincinnati

Software engineer with practical, day-to-day experience embedding AI into development workflows across coding, testing, code review, and AWS data pipelines. Uses tools like Claude, Cline, JUnit, Mockito, and Amazon Bedrock, and stands out for having a realistic, mature view of agent limitations, hallucinations, and the need for strong prompting and human validation.

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Arush Chhatrapati - Junior Software Engineer specializing in platform engineering and developer tooling in California, USA

Junior Software Engineer specializing in platform engineering and developer tooling

California, USA2y exp
Applied IntuitionUC Berkeley

Full-stack product engineer with platform and AI feature experience across Applied Intuition and Futre.me. They stand out for turning one-off requests into reusable multi-team platform capabilities, and for shipping production LLM workflows with structured outputs, validation, and pragmatic evaluation loops rather than hype-driven AI architecture.

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YH

Mid-Level Backend Engineer specializing in SaaS automation and data platforms

Remote, Canada3y exp
StitchUniversity of Waterloo
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SL

Mid-level Machine Learning Engineer specializing in LLM inference and MLOps

United States5y exp
NVIDIAUniversity of Central Missouri
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RM

Mid-level Software Engineer specializing in AI applications and distributed backend systems

Santa Clara, CA3y exp
NVIDIASanta Clara University
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MB

Staff Full-Stack Software Engineer specializing in AI-driven platforms

Columbia, MD10y exp
Accounting SeedUniversity of Central Florida
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SM

Mid-level Machine Learning Engineer specializing in NLP, federated learning, and fraud detection

CA, USA5y exp
AppleUSC
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SM

Staff Software Engineer specializing in cloud, networking, and distributed systems

Austin, TX7y exp
OracleUniversity of North Carolina at Charlotte
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YX

Senior Software Engineer specializing in scalable backend and distributed systems

San Francisco, CA8y exp
DoorDashDePaul University
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VJ

Mid-level Software Engineer specializing in cloud-native AI/ML and full-stack systems

Los Angeles, CA6y exp
NetflixFitchburg State University
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Poorna Pedapudi - Mid-Level Software Engineer specializing in distributed backend systems and cloud-native microservices in Seattle, WA

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

Seattle, WA5y exp
UberGeorge Mason University

Software engineer focused on data platforms and applied LLM systems: built an internal data quality monitoring layer to catch silent data drift and iterated post-launch after finding ~30% false-positive alerts, reducing noise via dynamic baselines and improved structured logging. Also shipped a production RAG-based internal knowledge assistant over Jira/Confluence with citations, confidence-based fallbacks, and nightly automated evals to prevent regressions.

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Aishwarya Sheelvant - Junior Backend & Data Engineer specializing in cloud infrastructure and ML pipelines in Atlanta, GA

Junior Backend & Data Engineer specializing in cloud infrastructure and ML pipelines

Atlanta, GA2y exp
C3 AIGeorgia Tech

Built a GenAI/RAG-based ESG questionnaire-answering agent at C3.ai, including a React dashboard with role-based access and human-in-the-loop verification by showing supporting source paragraphs. Reported outcomes included cutting a 4–5 week manual process down to about a week (~90% labor reduction) and a client-reported ESG rank improvement from 7th to 3rd.

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Alexander Smith - Junior Software Engineer and Data Scientist specializing in AI/ML systems in California, USA

Junior Software Engineer and Data Scientist specializing in AI/ML systems

California, USA3y exp
Dun & BradstreetUC Berkeley

Built production-grade automation and ML/data pipelines at Dun & Bradstreet and ThreadNotion, spanning large-scale document classification, country risk report automation, and resilient Playwright testing for dynamic AI chat workflows. Particularly strong in turning brittle or ambiguous systems into reliable, observable, end-to-end automated platforms.

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BA

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

New York, NY4y exp
GoDaddyCornell University

Backend/platform engineer with significant ownership at GoDaddy, where they built a real-time personalization and decisioning system that drove about $7M in annualized revenue and serves roughly 4M requests per day. Also operates as a solo engineer for a global human-rights legal-tech nonprofit, building the full platform and graph-based matching engine for 700+ partner organizations. Brings a strong blend of production backend rigor, platform thinking, and practical AI orchestration.

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RM

Rohith M

Screened

Mid-level Full-Stack Developer specializing in AWS serverless and Java/Spring

Austin, Texas6y exp
AppleUniversity of Bridgeport

Built and shipped a production generative-AI recipe feature on AWS serverless (Lambda + Bedrock), evolving it post-launch from fully AI-generated outputs to user-guided structured generation based on real usage patterns and system metrics. Emphasizes reliability via prompt constraints plus deterministic validation, with automated/human eval loops and CloudWatch-based observability to manage latency, cost, and output consistency.

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JR

Joseph Rivas

Screened

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

Boston, MA9y exp
Jaxon.AIGeorgia Tech

ML/AI engineer with hands-on ownership of production document intelligence and GenAI systems, spanning model experimentation, AWS deployment, monitoring, and iterative optimization. Stands out for turning document-heavy workflows into reliable, near real-time products with measurable gains in accuracy, latency, and manual-effort reduction, while also shipping citation-grounded RAG features that drove user trust and adoption.

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Harsh Sanas - Intern Full-Stack Engineer specializing in AI and distributed systems in Los Angeles, CA

Harsh Sanas

Screened

Intern Full-Stack Engineer specializing in AI and distributed systems

Los Angeles, CA2y exp
Scale AIUSC

Full-stack product engineer who has designed and shipped production web experiences in EV charging, trading, automotive companion apps, and AI systems. Stands out for owning user-facing React experiences through backend integration and production monitoring, with a strong bias toward reliability in real-time and high-stakes workflows. Also has early-stage Scale AI experience building a Text-to-SQL agent stack with Python, PostgreSQL, Redis, Kafka, and AWS.

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