Vetted Kubernetes Professionals

Pre-screened and vetted.

NT

Mid-level Software Engineer specializing in backend systems for FinTech

Dallas, TX4y exp
Goldman SachsUniversity of Central Oklahoma

Senior software engineer with hands-on experience leading multi-agent AI workflows in financial trading infrastructure. Most notably, they applied a specialized agent setup on a high-frequency trading backend to cut delivery time from three weeks to ten days while improving validation against risk, performance, and compliance requirements.

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Neeshma Narahari - Mid-level Software Developer specializing in backend microservices and cloud platforms in Irving, TX

Mid-level Software Developer specializing in backend microservices and cloud platforms

Irving, TX6y exp
McKessonUniversity of Central Missouri

Full-stack product engineer with strong React and TypeScript depth who has owned dashboard features end-to-end, from UI architecture and rendering optimization through Spring Boot APIs and database query tuning. Particularly compelling for startup or high-growth teams: they’ve shipped 0→1 internal operations platforms, prioritized MVP workflows effectively, and iterated post-launch using user feedback, logs, and usage metrics.

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SC

Mid-level Python Full-Stack Developer specializing in FinTech and AI integration

Cincinnati, OH6y exp
U.S. BankUniversity of Cincinnati

Python backend engineer with experience combining traditional API/microservices development and GenAI integrations, including healthcare claims workflows. Particularly compelling for teams building production AI systems: they pair hands-on work with LLMs, RAG, LangChain-style orchestration, and AWS deployment with a strong emphasis on reliability, security, and engineering discipline.

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AV

Aditi Verma

Screened

Senior Backend Engineer specializing in FinTech microservices

Pune, India7y exp
CitibankUniversity of Texas at Austin

Built end-to-end financial workflow platforms at Citi spanning React frontends, Spring Boot microservices, Kafka, Redis, and Oracle. Particularly compelling for teams needing someone who can modernize legacy systems into real-time architectures—the candidate cites a 48x throughput improvement from a batch-to-Kafka modernization effort.

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Ming Wang - Entry-level Software Engineer specializing in AI and FinTech in Hong Kong, Hong Kong

Ming Wang

Screened

Entry-level Software Engineer specializing in AI and FinTech

Hong Kong, Hong Kong1y exp
China Guangfa BankUniversity of Wisconsin–Madison

Recent college graduate and software engineer who relies heavily on AI-assisted development, reporting that roughly 85% of code in a recent initiative was AI-generated and then manually reviewed. Has built customer-facing AI features including personalized recommendations and an internship chatbot tied to product advertising, with exposure to API communication, database checks, and conversation monitoring.

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SK

Satya K

Screened

Mid-level Full-Stack Java Developer specializing in enterprise cloud applications

Texas, USA5y exp
CitibankUniversity of North Texas

Backend engineer with hands-on experience building event-driven Java/Spring Boot and Kafka systems, plus AI-assisted document-classification workflows in enterprise environments. Stands out for a thoughtful, risk-aware approach to AI: uses it to accelerate delivery, but emphasizes validation layers, confidence thresholds, observability, and human review before AI can affect downstream business actions.

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AH

Alan Harwood

Screened

Executive engineering leader specializing in SaaS platforms for FinTech and Automotive

South Jordan, UT12y exp
EmburseUniversity of Utah

Senior engineering leader with VP-level scope who combines hands-on technical depth with large-scale org leadership. He led modernization of a legacy automotive ERP platform and architected OEM integration systems, while also scaling teams aggressively and translating enterprise customer needs into practical product and engineering plans.

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JE

Justin Emsoff

Screened

Director-level Solutions Architect specializing in AI, integrations, and enterprise SaaS

Altadena, CA12y exp
KnowdeUSC

Player-coach engineering leader currently running a Solution Architecture/FDE team responsible for both presales and postsales delivery. Stands out for combining enterprise systems thinking with hands-on AI product work: they built configurable tooling that sped delivery by ~30%, drove a Kafka-to-Pulsar architecture shift for scale, and spent the last two years building LLM-based document extraction and RAG inference pipelines shaped directly by user feedback.

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NP

Navneet Parab

Screened

Mid-level AI/ML Engineer specializing in financial risk and LLM systems

New Jersey, USA4y exp
Ally FinancialNortheastern University

AI/ML engineer in financial services who has built both LLM-powered compliance tools and production fraud/credit risk systems at Ally Financial. Particularly strong in regulated, high-stakes environments: combines RAG/LLM architecture, rigorous evaluation, and human-in-the-loop governance, and also helped stand up a unified ML platform from scratch.

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SG

Junior Software Engineer specializing in AI search and full-stack systems

Denver, CO3y exp
finish’d, Inc.University of Colorado Boulder

AI/full-stack engineer who has built both a real-time crypto sentiment platform from scratch and production enterprise RAG search systems at Kore.ai. Stands out for combining strong systems engineering with practical LLM evaluation, retrieval tuning, and careful human-in-the-loop design for high-risk network automation use cases with Cisco.

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Javon Lee - Senior Software Engineer specializing in AI platforms and cloud-native systems in Baltimore, MD

Javon Lee

Screened

Senior Software Engineer specializing in AI platforms and cloud-native systems

Baltimore, MD8y exp
ClarityNorth Carolina A&T State University

Engineer with startup CTO experience and recent hands-on full-stack work at Microsoft and Clarity, focused on compliance and AML workflow platforms for financial services. Stands out for building scalable data and audit systems that reduced manual processing and improved performance, while operating effectively in ambiguous early-stage environments.

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RK

Rudra Kotti

Screened

Mid-level Full-Stack Developer specializing in .NET, React, and AI/ML

Worcester, MA5y exp
JPMorgan ChaseClark University

Frontend engineer with JP Morgan Chase experience building data-heavy React/TypeScript products, including an AI-powered enterprise search application and workforce analytics dashboards. Stands out for combining reusable component architecture, Redux-driven state flow, responsive CSS, and production performance tuning for large-scale internal enterprise tools.

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Aakash Khepar - Mid-level Full-Stack AI Engineer specializing in agentic AI systems in Tempe, AZ

Aakash Khepar

Screened

Mid-level Full-Stack AI Engineer specializing in agentic AI systems

Tempe, AZ4y exp
Arizona State UniversityArizona State University

AI/full-stack builder with hands-on experience shipping healthcare, career-tech, nonprofit, and fintech products, spanning speech AI, browser extensions, agentic RAG systems, and enterprise ML monitoring. Stands out for combining strong technical depth with measurable outcomes, including reducing clinical call WER from 26% to 3%, building safe tool-using agents with rollback/RBAC, and delivering zero-to-one multi-tenant platform features in ambiguous environments.

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MM

Michael Mei

Screened

Junior Backend Software Engineer specializing in Java microservices

Sunnyvale, CA3y exp
WalmartBoston University

Backend/full-stack engineer with experience at Walmart Global Tech who built and deployed an end-to-end consumer quiz product independently, covering frontend flow, Spring Boot APIs, PostgreSQL, AWS infrastructure, and CI/CD. Not a native iOS or React mobile specialist, but stands out for taking products from idea to production and emphasizing maintainability, reliability, and extensibility.

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Suman Madipeddi - Junior AI/ML Engineer specializing in agentic AI, RAG, and voice systems in San Jose, CA

Junior AI/ML Engineer specializing in agentic AI, RAG, and voice systems

San Jose, CA2y exp
ZscalerArizona State University

Full-stack AI product engineer who has owned production-grade document intelligence and agent systems at meaningful scale, including a copilot used by 10,000+ users and 1M+ queries. Particularly strong in combining React/TypeScript product work with Python/FastAPI, RAG, knowledge graphs, observability, and performance tuning—cutting latency from ~7 seconds to 0.5 milliseconds while improving trust through citations and human review.

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WT

Executive engineering leader specializing in AI platforms and Healthcare IT

Salem, OR21y exp
Adoreal Inc.University of Maryland, College Park

Engineering executive and former CTO with a rare blend of enterprise healthcare AI leadership and consumer AI product building for neurodiverse users. Led Adoreal’s U.S. expansion, scaled a multidisciplinary org by about 60%, modernized platform architecture with Kubernetes and CI/CD, and consistently ties engineering and AI decisions to trust, onboarding efficiency, and revenue outcomes.

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SG

Sindhu Gunti

Screened

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

Remote, USA5y exp
IntuitChristian Brothers University

Software engineer with Intuit experience shipping an end-to-end real-time financial insights product on AWS, using event-driven architecture with Kafka and Spark Streaming to process millions of records with low latency. Also delivers customer-facing React + TypeScript dashboards and has hands-on production operations experience, including resolving a database scaling incident via read replicas, query tuning, and connection pooling.

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AM

Amit Mehta

Screened

Executive Automotive Software Leader specializing in SDV, OTA, and embedded-cloud-AI platforms

Auburn Hills, MI16y exp
StellantisWayne State University

Automotive software and OTA/infotainment platform leader who has repeatedly built new lines of business as an intrapreneur—most recently taking an infotainment app marketplace from concept to production in <7 months with $3M seed funding and delivering ~$200M ROI while scaling the team from 0 to 90. Deep hands-on experience solving OTA fragmentation across ECUs/telematics and multiple OS/backends, with 18 patent processes submitted; exploring an AI-driven platform to automate OTA software qualification and cut release cycles from 9–18 months to ~2 weeks.

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DS

Mid-level Backend Software Engineer specializing in FinTech

Chennai, India3y exp
CitigroupUniversity at Buffalo

Backend engineer with Citigroup experience who built and evolved a self-service user provisioning/identity backend, cutting onboarding from 45 minutes to under 2 minutes. Demonstrates strong production-grade integration and reliability practices (isolated integrations, retries, rollback logic, heavy logging) plus secure API development in Python/FastAPI with OAuth scope-based authorization and incremental, low-risk rollout strategies.

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MS

Mid-level Data Scientist / Machine Learning Engineer specializing in fraud, risk, and MLOps

Remote, MO7y exp
Northern TrustWebster University

AI/ML practitioner with Northern Trust experience who has shipped production LLM systems (internal support assistant) using RAG, vector databases, orchestration (LangChain/custom pipelines), and rigorous monitoring/feedback loops. Also built AI-driven fraud detection/risk monitoring solutions in a regulated financial environment, emphasizing explainability (SHAP), audit readiness, and stakeholder trust through dashboards and clear communication.

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GB

Mid-level AI/ML Engineer specializing in fraud detection and risk analytics in Financial Services

USA5y exp
JPMorgan ChaseTrine University

At JP Morgan Chase, built and deployed a production LLM-powered RAG knowledge assistant to help fraud investigators and risk analysts quickly navigate regulatory updates and internal policies, reducing investigation delays and compliance risk. Strong focus on secure retrieval (RBAC filtering), reliability (layered testing + observability), and production constraints (latency/SLOs), with Airflow-orchestrated, auditable ML pipelines.

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SK

Mid-level GenAI/ML Engineer specializing in LLM agents and RAG for Financial Services & Healthcare

5y exp
Bank of AmericaVirginia Commonwealth University

Built and deployed a production GenAI internal support agent at Bank of America (“Ask GPS/AskGPT”) using RAG on Azure, focused on reducing escalations and improving response quality for repetitive knowledge-based queries. Demonstrates strong production LLM engineering: custom LangChain orchestration, retrieval tuning to reduce hallucinations, rigorous offline/online evaluation, and model benchmarking with dynamic routing (e.g., GPT-4 vs Claude).

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TP

Mid-level Python & AI/ML Engineer specializing in backend APIs and MLOps

USA6y exp
Capital OneUniversity of Memphis

Built and deployed a production LLM/RAG document automation system for business documents (contracts/claim forms) that extracts schema-validated JSON, generates grounded summaries/Q&A, and integrates into transaction systems via APIs. Emphasizes real-world reliability: hallucination controls, layout-aware parsing with OCR fallback, Step Functions-orchestrated workflows with retries/timeouts, and human-in-the-loop review designed in close partnership with operations and claims stakeholders.

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