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Vetted Encryption Professionals

Pre-screened and vetted.

NS

Junior Software Engineer specializing in cloud backends, data engineering, and applied NLP

Seattle, WA1y exp
AmazonColumbia University
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DH

Senior Full-Stack Engineer specializing in microservices, data pipelines, and AI in FinTech

Irvine, CA9y exp
FlyFinGeorgia Tech
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MT

Senior DevOps & Cloud Engineer specializing in multi-cloud platforms and Kubernetes GitOps

Houston, TX9y exp
United AirlinesUniversity of Buea
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FR

Executive Engineering Leader specializing in enterprise SaaS platforms, security, and data

Carlsbad, CA30y exp
ClariUC Irvine
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PH

Director of Cybersecurity specializing in AI and Cloud Security

Pleasanton, CA19y exp
OracleNorthwestern Polytechnic University
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PS

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

Austin, TX6y exp
CloudflareNYU
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AS

Arnav Singh

Screened

Junior Software Engineer specializing in full-stack web, cloud data, and applied ML

Hanover, NH2y exp
PlayStationDartmouth College

Backend engineer who evolved the X-Ray gaming analytics platform, leading a zero-downtime MongoDB→AWS DocumentDB migration with dual-write, checksum-based validation, and Kubernetes canary rollouts while maintaining real-time monitoring for millions of concurrent sessions. Strong in FastAPI/Python API scaling and performance tuning (cut latency from ~2s to <150ms and reduced DB load 90%) plus production-grade auth/RLS security patterns (JWT, Supabase Auth, PostgreSQL RLS).

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PT

Senior Data Engineer specializing in cloud big data pipelines and real-time streaming

Seattle, WA6y exp
AmazonUniversity of North Texas

Amazon data engineer who built a real-time fraud detection pipeline for AWS Lambda, tackling multi-region telemetry quality issues and scaling stream processing for billions of daily requests. Strong in production-grade data/ML workflows on AWS (EMR, Glue, Kinesis, SageMaker) with hands-on entity resolution and anomaly detection.

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YS

Mid-level Full-Stack Developer specializing in cloud microservices and AI-driven FinTech

Remote, USA4y exp
StripeSouthern Arkansas University

Stripe engineer who shipped an end-to-end merchant fraud insights dashboard, spanning Spring Boot/Kafka risk-scoring services and a React+TypeScript UI. Focused on low-latency, high-volume transaction processing and production operations on AWS (EKS/CloudWatch), including handling a real traffic-spike latency incident via query optimization, indexing, and rate limiting.

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BS

Mid-level Full-Stack Developer specializing in cloud-native backend services and real-time data platforms

Remote, USA4y exp
NetflixUniversity of Dayton

Backend/data engineering candidate with Netflix experience designing and migrating analytics platforms from batch to real-time streaming (Kafka/Flink) across AWS and GCP. Delivered measurable improvements (40% lower data delay, 99.9% accuracy) using phased rollouts, automated data validation (Great Expectations), and strong observability (Prometheus/Grafana), and proactively hardened pipelines with idempotency to prevent duplicate Kafka processing.

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AL

Andrew Liang

Screened

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

2y exp
AmazonUCLA

Software engineer with experience at Amazon and Agora building end-to-end systems: a knowledge-base AI chatbot (React/TypeScript UI + retrieval/response backend + Docker deployment) and an internal approval governance platform using AWS Step Functions and DynamoDB. Emphasizes fast iteration without sacrificing trust via feature-flag rollouts, citation-required answers, abstention on low-confidence retrieval, regression query sets, and strong observability (request IDs, structured logs, latency/error monitoring).

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SC

Shweta Chavan

Screened

Junior Computer Vision & ML Engineer specializing in autonomous perception systems

Pittsburgh, PA2y exp
Magna InternationalCarnegie Mellon University

LLM/RAG engineer who built a production-style multi-agent orchestrator for resume-to-recommendation workflows (PDF ingestion through screening and recommendations), emphasizing prompt tuning and strict JSON output contracts. Currently building a RAG application for an NGO using Airflow (DAGs + embeddings) and tackling messy, missing/imbalanced data; has hands-on retrieval stack experience (FAISS/HNSW, bge embeddings) and uses rigorous evaluation metrics for groundedness and hallucination control.

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PM

Executive CTO specializing in product scaling, cloud architecture, and AI platforms

Los Angeles Area (Corona, CA)16y exp
PRV8University of Pennsylvania
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HL

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps

San Francisco, CA5y exp
Scale AILong Island University
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HL

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps

San Francisco, CA4y exp
Scale AILong Island University Brooklyn
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MM

Senior Software Engineer specializing in Python, AI/ML, and AWS cloud-native systems

Chicago, IL11y exp
ParivedaUniversity of Chicago
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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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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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