Vetted Backend Development Professionals

Pre-screened and vetted.

EJ

Senior Software Engineer specializing in Python backend services and APIs

Olympia, WA10y exp
MetaUniversity of Dallas
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William Yang - Senior Software Engineer specializing in ML, search, and AI-powered backend systems in Jersey City, NJ

Senior Software Engineer specializing in ML, search, and AI-powered backend systems

Jersey City, NJ10y exp
AmazonRutgers University–New Brunswick
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PA

Senior Software Engineer specializing in ML-enabled FinTech SaaS

New York City Metropolitan Area, NY8y exp
MercuryUniversity of Pennsylvania
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DD

Senior Software Engineer specializing in Python and AWS cloud backend systems

Austin, TX8y exp
Royal.ioUSC
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PV

Director-level Software Development Manager specializing in large-scale cloud platforms

San Jose, California13y exp
Amazon
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AS

Akshat Shah

Screened ReferencesStrong rec.

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

Los Angeles, CA1y exp
Integrated Media Systems CenterUSC

Frontend-leaning full-stack engineer who described owning an artist search and detail experience across UI, backend integrations, and data modeling. They show practical strength in scalable React architecture, TypeScript safety, and performance tuning, with a product-minded approach to shipping 0→1 features quickly and iterating after launch.

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RS

Ryan Simon

Screened ReferencesStrong rec.

Staff Android Engineer and mobile engineering leader specializing in Kotlin Multiplatform

San Francisco, CA12y exp
MonzoUC Riverside

Engineering leader with hands-on Android architecture expertise who has scaled mobile teams at Weedmaps (including forming a Platform team and rolling out MVVM/unit testing) and also co-founded a bootstrapped side business (Sizzle), owning the technical roadmap, hiring strategy (university pipeline + senior remote engineers in Pakistan), and stepping into fundraising when runway became critical.

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Yuan-Hsuan Wen - Intern Software Engineer specializing in AI agents, RAG pipelines, and semiconductor systems in Taipei, Taiwan

Intern Software Engineer specializing in AI agents, RAG pipelines, and semiconductor systems

Taipei, Taiwan3y exp
NVIDIAUSC

Built a web-based interface that connects an internal bug system to an LLM for initial debugging and issue classification, aiming to boost QA and software engineer efficiency while balancing latency and accuracy. Worked as a one-person project and managed constraints like limited hardware and difficulty extracting team debugging context, relying on manager communication and rapid modeling to validate direction.

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Rom Manzano - Executive technical founder and full-stack engineer specializing in AI, SaaS, and FinTech in New York, NY

Rom Manzano

Screened

Executive technical founder and full-stack engineer specializing in AI, SaaS, and FinTech

New York, NY15y exp
1848VUC Berkeley

Engineer coming out of a venture studio as it winds down, now seeking another zero-to-one environment with strong studio support and go-to-market playbooks. They show a thoughtful founder mindset centered on rapid shipping, design-partner validation, lean execution, and testing whether users will actually pay for a workflow-specific solution.

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AK

Avinash K

Screened

Mid-level Software Engineer specializing in AI/LLM and distributed systems

Stony Brook, NY4y exp
Creao AIStony Brook University

Recent internship project at Google Workspace building an LLM-driven Python backend pipeline to extract/enrich NLP features from messy customer web domains and integrate them into a Domain Feature Store for personalization and promotions. Also has hands-on Kubernetes/Docker deployment experience for a Digital Signage SaaS backend with GitHub Actions CI, plus strong streaming-systems knowledge (Kafka exactly-once, schema evolution, Flink scaling) and built an information retrieval system handling 30,000+ cases.

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Kunj Amrutbhai Patel - Mid-level Software Engineer specializing in distributed backend systems on AWS in Seattle, WA

Mid-level Software Engineer specializing in distributed backend systems on AWS

Seattle, WA4y exp
AmazonTrine University

Built production systems in the AWS ecosystem, including an internal AI assistant for diagnosing account transfer and permissions issues and an end-to-end account transfer workflow used by enterprise customers. Stands out for combining LLM/RAG design with strong distributed systems reliability practices, emphasizing guardrails, fallbacks, and operational trust in high-stakes workflows.

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AH

Anna Huang

Screened

Mid-level Software Engineer specializing in backend distributed systems and cloud platforms

6y exp
IntelUC Santa Cruz

Software engineer at Intel who owns a production Go/Kubernetes backend for supply-chain transparency and end-to-end hardware integrity verification in a hybrid cloud setup (AWS control plane + Azure data plane). Also built and shipped an AI agent workflow for real-estate due diligence that turns raw Excel spreadsheets into structured investment outputs and auto-generated PowerPoint insights using LangGraph, with strong emphasis on verification, observability, and reliability guardrails.

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Hariesh Jayanthan - Mid-Level Full-Stack Software Engineer specializing in test automation platforms in Mountain View, CA

Mid-Level Full-Stack Software Engineer specializing in test automation platforms

Mountain View, CA4y exp
AppleMcMaster University
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TO

Mid-Level Front-End Engineer specializing in React and Fluent UI

Seattle, WA6y exp
MicrosoftUniversity of Texas at Austin
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MD

Mid-level Software Engineer specializing in backend systems and AR/VR sensor calibration

California, United States5y exp
GoogleIndiana University Bloomington
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SB

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

Redwood City, CA4y exp
BoxUniversity of Maryland, College Park
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DS

Mid-level Software Engineer specializing in AWS backend systems and LLM infrastructure

5y exp
AmazonNortheastern University
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HA

Entry-level Software Engineer specializing in AI/ML infrastructure

San Jose, CA1y exp
SplunkGeorgia Tech
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MR

Junior Software Engineer specializing in bioinformatics and healthcare applications

Philadelphia, PA4y exp
The Wistar InstituteUniversity of Pennsylvania
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DN

Senior Backend Software Engineer specializing in AWS serverless and data pipelines

San Jose, CA11y exp
UpworkUC Santa Cruz
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Vigynesh Bhatt - Mid-level Software Engineer specializing in backend, cloud, and ML systems in Salt Lake City, UT

Vigynesh Bhatt

Screened ReferencesStrong rec.

Mid-level Software Engineer specializing in backend, cloud, and ML systems

Salt Lake City, UT4y exp
Goldman SachsBrigham Young University

Software engineer with experience across Goldman Sachs, BYU Broadcasting, Juniper Networks, and an edtech startup (Doubtnut), spanning data migrations, AWS-based media backends, and microservices observability. Built a Redis/ElastiCache caching layer in front of DynamoDB/S3 to improve media delivery latency and cost, and created an SEO indexing automation tool using the Google Search Console API that saved ~15–30 person-hours per day.

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SD

Shiting Ding

Screened

Mid-level Software Engineer specializing in Ads backend and ML infrastructure

Palo Alto, CA3y exp
AmazonUC San Diego

Customer-facing technical professional with Amazon incident-management experience who helps drive adoption of complex ML/LLM solutions by delivering hands-on demos and rapid model fine-tuning. Applies a disciplined debugging approach (repro + logs/metrics + severity triage) and maintains runbooks to resolve SEV2 issues in ~1 hour, while also partnering with sales/customer teams to ship patches and new features based on feedback.

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SK

Mid-level Software Engineer specializing in backend systems and cloud data platforms

Seattle, WA5y exp
AmazonOhio State University

Candidate is a hands-on engineer using AI as a controlled coding partner rather than an autonomous decision-maker. They have practical experience designing and leading structured multi-agent coding pipelines with specialized roles for code generation, review, and test coverage, and show strong judgment around reliability through schemas, guardrails, reviewer gates, and manual validation.

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