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Vetted JWT Professionals

Pre-screened and vetted.

HS

Mid-level Full-Stack Developer specializing in AI and FinTech platforms

San Francisco, CA5y exp
MetaNorth Carolina State University
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LK

Mid-level Full-Stack Python Developer specializing in cloud-native FinTech and GenAI

San Francisco, CA6y exp
StripeUniversity of Texas at Dallas
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VN

Mid-level Backend Engineer specializing in microservices and event-driven systems

NYC, NY3y exp
UberUniversity at Albany
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SV

Mid-level Full-Stack Developer specializing in cloud-native apps, AI/ML, and microservices

5y exp
Fidelity InvestmentsUniversity of Texas at Arlington
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YL

Intern Full-Stack Software Engineer specializing in scalable web platforms

Pittsburgh, PA1y exp
Innovation AICarnegie Mellon University
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LS

Mid-level Python Backend Developer specializing in FinTech and ML-driven fraud detection

San Francisco, USA4y exp
StripeUniversity of North Carolina at Charlotte
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MG

Senior Full-Stack Engineer specializing in backend systems and cloud-native microservices

Pace, FL11y exp
micro1Florida Institute of Technology
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LG

Mid-level Full-Stack Engineer specializing in Python microservices and cloud automation

San Jose, CA6y exp
MicrosoftSaint Louis University
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RC

Senior Data/GenAI Engineer specializing in cloud-native ML, RAG, and real-time data platforms

Richardson, TX8y exp
ToyotaTexas A&M University
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SB

Senior Full-Stack Software Engineer specializing in scalable microservices and cloud platforms

Dallas, TX6y exp
Liberty MutualSaint Peter's University
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SW

Mid-Level Frontend Software Engineer specializing in React and React Native

Taipei, Taiwan2y exp
ASUSGeorgia Tech
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MT

Mid-level Full-Stack Developer specializing in React, Node.js, and Spring Boot

CA, USA4y exp
McKinsey & CompanyUniversity of Alabama at Birmingham
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SS

Mid-Level Full-Stack Python Engineer specializing in AI-powered web apps and cloud-native systems

San Francisco, CA6y exp
StripeSaint Louis University
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NM

Mid-level Full-Stack Python Developer specializing in cloud-native banking applications

6y exp
TruistPace University

Backend engineer who built a low-latency real-time transaction API in Python/Flask, with strong depth in PostgreSQL/SQLAlchemy performance tuning (time-based partitioning, indexing, connection pooling). Has production experience integrating ML scoring and OpenAI-style APIs with safety/latency controls, and designing multi-tenant isolation strategies including per-tenant pooling/caching and premium-tenant isolation.

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PC

Prateek C

Screened

Mid-Level Full-Stack Software Engineer specializing in Java/Spring, React, and AWS

San Francisco, CA6y exp
ShopifyClemson University

Backend/full-stack engineer (5+ years) with Shopify experience integrating LLM/RAG workflows into production APIs. Owned a Python TensorFlow Serving inference pipeline connected to Java microservices via gRPC, optimizing tail latency at ~10k concurrent load and improving retrieval relevance with embedding and evaluation work. Strong Kubernetes/EKS + GitOps/CI/CD background, including monolith-to-microservices migrations and event-driven streaming patterns.

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MK

Mid-Level Java Developer specializing in FinTech microservices

Remote, USA5y exp
StripeUniversity of Central Florida

Backend/platform engineer with deep payments experience who built and operated a real-time transaction routing service end-to-end on AWS (Spring Boot, PostgreSQL/RDS, Redis, Kubernetes), delivering ~40% latency reduction and 99.99% uptime via strong resiliency and observability practices. Also productionized an internal LLM-powered RAG knowledge assistant with guardrails and a user-feedback-driven evaluation loop, and has led incremental monolith-to-microservices modernization using Strangler Fig and shadow traffic.

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WL

winston lo

Screened

Junior Software Engineer specializing in AI agents, RAG, and full-stack development

Remote2y exp
Tresle AIUC Berkeley

Backend engineer who built and iterated a secure, multi-tenant RAG system over a large document corpus, emphasizing strict RBAC/ACL isolation, hybrid retrieval (vector+keyword), reranking, and strong observability to balance relevance, latency, and cost. Also led production refactors/migrations using strangler + feature flags/dual writes and has experience catching subtle real-world failure modes (including in a sensor calibration optimization pipeline).

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AP

Senior Backend/Platform Engineer specializing in Python and AWS

Covington, Georgia, United State10y exp
CapgeminiGeorgia State University

Backend/data engineer with hands-on production experience across Python/FastAPI services and AWS (Lambda, API Gateway, SQS, ECS) delivered via Terraform and GitHub Actions. Built Glue-to-Redshift ETL pipelines with Step Functions retry/catch patterns, schema evolution safeguards, and data quality checks; also modernized a legacy SAS monthly reporting system into Python microservices with rigorous side-by-side parity validation. Demonstrated strong SQL tuning skills with a reported improvement from 5 minutes to 15 seconds.

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PJ

Po Jui Lin

Screened

Mid-Level Full-Stack Engineer specializing in cloud platforms, cybersecurity web apps, and IoT

Seattle, WA3y exp
AmazonUniversity of Washington

Backend engineer with experience at Amazon building an API-driven service (APS) for large-scale prompt optimization jobs using AWS Step Functions, Batch/Fargate, DynamoDB, and S3, emphasizing idempotency, observability, and secure execution boundaries. Also led a multi-tenant enterprise policy/configuration backend refactor at MAMIT Cyber with versioned schemas, shadow writes, feature-flagged rollout, and PostgreSQL RLS-based tenant isolation.

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SS

Shubham Singh

Screened

Mid-level Software Engineer specializing in LLM systems and intelligent search

CO, USA6y exp
PalantirSan José State University

Backend engineer from Palantir who built and productionized an enterprise LLM-based document intelligence/search platform, evolving it into a hybrid lexical+vector retrieval system. Emphasizes reliability and cost control via strict LLM gating, robust fallback paths, and evaluation frameworks (e.g., MMLU/BLEU), plus disciplined migration practices (feature flags, dual-writes, shadow reads) to ship changes safely at scale.

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