Vetted Asynchronous Processing Professionals

Pre-screened and vetted.

TS

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

Chicago, IL3y exp
PM AcceleratorIllinois Institute of Technology
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VG

Senior Backend Software Engineer specializing in FinTech and distributed systems

California, USA4y exp
Western UnionCalifornia State University, Long Beach
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NH

Senior Backend Engineer specializing in scalable cloud and compliance systems

Wichita Falls, TX10y exp
LeidosMidwestern State University
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VN

Senior Software Engineer specializing in healthcare data streaming

McLean, VA11y exp
AppianTexas Wesleyan University
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DP

Mid-level Java Full-Stack Developer specializing in cloud-native microservices

Columbus, IN6y exp
Cummins
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BK

Bhuvaneswari Kudaravalli

Screened ReferencesStrong rec.

Mid-Level Full-Stack Software Engineer specializing in TypeScript, React/Next.js, and Node/Nest APIs

Portland, OR5y exp
Portland State UniversityPortland State University

Full-stack engineer who built and scaled an AI-powered web product (React/Next.js + TypeScript/NestJS) with MongoDB, Redis, and RabbitMQ. Strong in rapid iteration while maintaining production quality—uses versioned APIs, feature flags, CI/CD, and observability (correlation IDs/structured logs) to ship frequently and debug distributed workflows. Also created an internal operations dashboard for real-time visibility and control of background jobs/AI workflows that was adopted quickly by ops and product teams.

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NR

Nakul Reddy Sarasani

Screened ReferencesStrong rec.

Junior Full-Stack Software Engineer specializing in cloud-native distributed systems

Dallas, USA3y exp
JPMorgan ChaseUniversity of North Texas

Software engineer with JPMorgan Chase experience building a real-time operations console backend on Spring Boot/Kafka/Kubernetes and resolving peak-load latency through profiling, indexing, caching, and async processing. Also built and owned an AI-driven digital-archives metadata pipeline during a master’s at UNT using OCR + LLaMA-based prompting with validation, near-human accuracy, and human-in-the-loop guardrails.

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RS

Mid-level Software Engineer specializing in backend microservices and Healthcare IT

Redmond, WA3y exp
CVS HealthUniversity at Buffalo

Backend and distributed-systems engineer with experience integrating LLM capabilities into clinical data workflows at CVS. Stands out for treating AI as an engineering accelerator rather than a shortcut, with strong emphasis on validation, observability, Kafka-based async pipelines, and safe multi-agent orchestration for production systems.

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RG

Rishabhh Garg

Screened

Software Engineer specializing in full-stack development and AI/ML automation

Needham, MA4y exp
First Help FinancialNortheastern University

Backend Python engineer focused on production-grade automation and reliability, with hands-on experience designing scalable API systems on PostgreSQL and making pragmatic architecture calls (modular monolith over premature microservices). Demonstrated measurable performance wins (50–60% latency reduction) and strong operational rigor via observability, incremental rollouts/feature flags, and security patterns like JWT + RBAC + database row-level security.

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AS

Senior Software Developer specializing in SaaS, AWS, and API-driven platforms

Remote9y exp
Omen TechnologiesNortheastern University
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NP

Nency Patel

Screened ReferencesModerate rec.

Intern Backend Software Engineer specializing in AI and distributed systems

California, USA1y exp
BravenRutgers University

Built and owned an enterprise AI document-processing deployment at an automotive tech startup, taking it from discovery to stabilization. Strong in production LLM/RAG systems and backend reliability, with measurable impact including 8,000+ documents processed monthly and turnaround time reduced from nearly 24 hours to about 3 hours.

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DC

Mid-level Full-Stack Developer specializing in FinTech, Healthcare IT, and Generative AI

USA4y exp
Inspira FinancialUniversity of Texas at Arlington

Full-stack + ML engineer who built “Finsight,” a real-time financial risk platform (React/FastAPI/MongoDB/AWS Lambda) processing 2M+ records monthly, using sharding and Redis caching (60% DB load reduction) plus async and batch optimizations. Also has healthcare product experience at Apollo Healthcare, partnering directly with clinicians/admins to design and iterate EHR dashboards via Figma prototyping and user testing, and demonstrates clear system design thinking for real-time voice-to-LLM architectures.

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LM

Mid-Level Full-Stack Software Engineer specializing in cloud-native microservices

Seattle, WA4y exp
SiemensUniversity of North Texas

Backend engineer with experience in both healthcare (Siemens) and payments (Bitwise), focused on scaling Python APIs and modernizing architectures. Has led monolith-to-microservices migrations and introduced Kafka async processing, Redis caching, and ELK observability, citing ~40% faster issue resolution and improved reliability via idempotency and strong security controls (OAuth2/JWT, RBAC, RLS).

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MR

Manish Reddy

Screened

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

Los Angeles, CA3y exp
Kore.aiCal State San Bernardino

Software engineer (Yellow.ai) who built and productionized an AI-driven resume tailoring system using embeddings + Chroma RAG + QLoRA fine-tuning, deployed via Docker/Kubernetes with CI/CD on a CPU-only Oracle VM. Demonstrates strong reliability/evaluation rigor (custom hallucination/coverage/relevance metrics) and measurable business impact, including a 60% user satisfaction lift from improving chatbot intent accuracy with product and support teams.

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SB

Mid-level Full-Stack & ML Engineer specializing in AI SaaS, MLOps, and cloud infrastructure

Edison, NJ3y exp
AffirmoAINYU

Built and shipped an AI-powered driver ranking/assignment system at AffirmoAI using LLM intent classification + RAG over pgvector/Postgres, served via FastAPI with a React UI that explains scores. Drove measurable improvements through optimization and iteration (latency down to <800ms, adoption 60%→90%+) and implemented rigorous eval loops with dispatcher ground truth plus cold-start handling for new drivers.

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Abhishek Gupta - Mid-level Full-Stack Developer specializing in AI automation and RAG pipelines in Toronto, ON

Mid-level Full-Stack Developer specializing in AI automation and RAG pipelines

Toronto, ON6y exp
TCSConcordia University

Frontend engineer who has led mobile-first and web React/TypeScript products end-to-end, including an expense tracking app handling sensitive financial data and a real-time messaging/activity dashboard with chat, presence, and contextual side panels. Emphasizes scalable architecture, rigorous component-boundary testing, and production-safe rollout practices (feature flags, analytics/logging, staged releases) to ship reliably in fast-paced environments.

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Sai Erramada - Mid-level Full-Stack Java Developer specializing in microservices and cloud-native systems in Wisconsin, USA

Sai Erramada

Screened

Mid-level Full-Stack Java Developer specializing in microservices and cloud-native systems

Wisconsin, USA6y exp
WalgreensConcordia University Wisconsin

Backend engineer with hands-on experience building real-time, event-driven systems at Walgreens, including a Kafka-based prescription status notification service and scalable pipelines for messy prescription/inventory data. Strong focus on reliability patterns (retries, idempotency, DLQs) and iterating based on pharmacist feedback to improve usability.

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Srinandh Reddy - Mid-Level Software Engineer specializing in backend, cloud, and event-driven systems in Aurora, Illinois

Mid-Level Software Engineer specializing in backend, cloud, and event-driven systems

Aurora, Illinois5y exp
McKessonLewis University

Robotics software engineer focused on backend and distributed systems for real-time robot operations, including sensor ingestion, robot state management, and robot-to-cloud communication. Hands-on with ROS/ROS2 integration and real-time navigation debugging, plus production-grade monitoring, CI/CD, and containerized deployments (Docker/Kubernetes) to improve stability and performance.

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AB

Abhishek Basu

Screened

Junior Backend Software Engineer specializing in cloud and AI systems

Chicago, IL2y exp
Carpl.aiUniversity of Illinois Chicago

Built and shipped LLM-enabled decision systems focused on real production reliability rather than chatbot demos, including a multimodal radiology retrieval platform with 28% relevance gains and 35% lower latency. Also architected a 4-agent employee analytics workflow with structured outputs, traceable orchestration, and strong safeguards for messy real-world data.

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Kush Shah - Junior Full-Stack Software Engineer specializing in web apps and automation in Remote, USA

Kush Shah

Screened

Junior Full-Stack Software Engineer specializing in web apps and automation

Remote, USA3y exp
StateableGeorge Mason University

Backend engineer with hands-on experience building an AI-powered document processing pipeline for insurance workflows from design through deployment and production support. They combine LLM-based extraction with rule-based validation, retries, and observability, showing a pragmatic approach to making AI systems reliable in high-stakes environments.

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Kevin Delong - Senior AI/ML Engineer specializing in Generative AI, LLMs, and RAG systems in Irvine, CA

Kevin Delong

Screened

Senior AI/ML Engineer specializing in Generative AI, LLMs, and RAG systems

Irvine, CA12y exp
StfineTechLawrence Technological University

AI/ML engineer with hands-on experience shipping production systems across fintech, travel, and legal use cases. They’ve built end-to-end chatbot, generative content, and RAG solutions on AWS with CI/CD, monitoring, and guardrails, including a loan application platform that generated $3,000 in sales in its first month.

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MV

Mid-Level Software Engineer specializing in Java/Spring microservices and cloud event-driven systems

California, US5y exp
LTIMindtreeCalifornia State University, Long Beach

LLM/agentic-systems practitioner who has repeatedly taken LLM-driven pricing/decision services from prototype to production using pilots, guardrails, observability, and staged rollouts. Demonstrates strong real-time incident troubleshooting (dependency timeouts, cached fallbacks) and post-incident hardening (isolation/async/alerts), and also supports go-to-market via developer workshops, technical demos, and sales-aligned POCs.

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