Vetted Jenkins Professionals

Pre-screened and vetted.

RV

Rucha Visal

Screened

Mid-Level Software Development Engineer specializing in distributed systems and full-stack web apps

Seattle, USA4y exp
AmazonUniversity of North Carolina at Charlotte

Software engineer who owned customer-facing, high-traffic TypeScript/React + TypeScript backend systems end-to-end, emphasizing safe velocity through feature flags, staged rollouts, observability, and rollback-ready incremental delivery. Reports shipping more frequently with fewer production incidents and faster recovery due to these guardrails.

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JS

Jonas Shuai

Screened

Mid-level Full-Stack Software Engineer specializing in cloud, microservices, and React/Java

Menlo Park, CA3y exp
Mainspring EnergyUniversity of San Francisco

Software engineer with experience at PayPal and JPMC building large-scale onboarding/account setup systems using React/TypeScript with Spring Boot/Node microservices and Kafka. Also built an Ignition-based SCADA monitoring tool at Mainspring Energy that became the default for manufacturing/test engineers by aggregating real-time telemetry and historical test data.

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CD

Mid-Level Software Developer specializing in Java microservices and cloud-native systems

St. Louis, MO5y exp
EpsilonSaint Louis University

Backend engineer focused on cloud/distributed systems, deploying Java 17/Spring Boot microservices on AWS EKS with RDS and Kafka. Demonstrated strong production readiness work (DB lock mitigation, Kafka idempotency, gradual rollouts) and delivered a major latency improvement (~400ms to ~100ms). Also has proven cross-layer troubleshooting skills, isolating intermittent API timeouts to a specific Kubernetes node’s network interface issue, and partners closely with ops teams to build dashboards and workflow automation (including Python scripts).

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SR

Mid-Level Software Engineer specializing in AWS cloud services and microservices

Seattle, Washington4y exp
AmazonArizona State University

Software engineer with primary experience in Java and Python who also troubleshoots and optimizes JavaScript/React performance issues. Has handled customer-reported production problems via log-driven diagnosis and backend workflow fixes, and took ownership of simplifying and automating a service region-expansion process through time analysis and process documentation.

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LL

Lisa Li

Screened

Director-level Engineering Leader specializing in SaaS, Cloud, and AI/ML delivery

Katy, Texas19y exp
Sainsbury'sThe Open University

Engineering leader who has led 100+ engineers at Sainsbury’s Tech and previously scaled an org from 6 to 60+ at AND Digital. Drove a high-impact modernization of a pricing/decisioning platform serving 1,700 stores—moving from batch monolith to real-time Kafka-based event-driven microservices with MLOps, IaC (Terraform), and zero-trust—delivering £18m+ annual profit uplift and 10+ deploys/day.

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SA

Mid-level Full-Stack Software Engineer specializing in FinTech and payments platforms

Texas, USA4y exp
PayPalNortheastern University

Worked on payments and wallet transactions, with an emphasis on observability and root-cause analysis. Delivered end-to-end A/B testing optimization and implemented Jenkins-based CI/CD automation that reduced manual implementation to 35% and cut deployments to ~2 minutes, with attention to operational considerations like on-call/call rotations.

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SV

sai venkata

Screened

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

Texas, USA6y exp
CVS HealthUniversity of Central Missouri

Senior data engineer with experience in both healthcare (CVS Health) and financial services (Bank of America), building large-scale Azure lakehouse pipelines (30+ EHR sources, ~5TB) and real-time streaming services (Event Hubs/Kafka) for patient vitals. Strong focus on reliability and data quality (Great Expectations, monitoring/alerting, schema drift automation), with measurable outcomes like 50% runtime reduction and 99%+ uptime for regulatory reporting pipelines.

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CD

Czyznyck Deco

Screened

Senior QA Lead specializing in large-scale game testing and release readiness

Los Angeles, CA21y exp
Intrepid StudiosUC Irvine

Game QA Lead/embedded QA with live production experience supporting a public alpha, owning narrative/early-game content quality and quest progression stability. Known for driving rapid resolution of high-impact blockers via consistent repros, cross-discipline coordination, and data-backed reporting (including bot-based success/failure measurement), while maintaining sprint-aligned test plans and documentation in JIRA/Confluence and leading developer playtests for gameplay feel/polish.

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JV

Mid-level Data Engineer specializing in cloud data platforms and streaming pipelines

San Diego, CA6y exp
IntuitCleveland State University

Data engineer with Intuit experience owning end-to-end, high-volume financial data pipelines (API/S3 ingestion, Airflow orchestration, Spark/PySpark + SQL transforms, Snowflake marts). Strong focus on reliability and data quality—achieved 99.8% SLA and cut discrepancies by 35% using Great Expectations, reconciliation, schema versioning, and automated backfills; also built near real-time Kafka/API data services with CI/CD and observability.

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RK

Rohit Kumar

Screened

Mid-level Data Engineer specializing in large-scale analytics platforms

San Jose, CA5y exp
NutanixUSC

Data/Backend engineer with experience at Naukri building large-scale analytics products over a 130M+ user base, including Spark/Airflow pipelines and Kafka-based clickstream validation with Confluent Schema Registry. Also built an audience segmentation backend (Athena/S3 + Spring Boot APIs) for non-technical internal teams and recently shipped a GenAI customer data audit system (FastAPI/Postgres/Llama) that cut sales-planning validation from ~3 months to ~1 week.

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Shanmukha Koganti - Mid-level AI/ML Engineer specializing in recommender systems and edge computer vision in Bay Area, CA

Mid-level AI/ML Engineer specializing in recommender systems and edge computer vision

Bay Area, CA6y exp
ShopifyUniversity of North Texas

ML/AI engineer with production experience at Shopify and Intel, building a deep learning product ranking system that lifted add-to-cart ~14% and serving real-time similarity search via FAISS+Redis under <20ms latency at massive scale. Also deployed computer vision models to 100+ retail edge locations using Docker/Ansible/k3s with zero-downtime rollouts, and applies strong MLOps practices (A/B testing, canary/shadow, observability) plus performance optimization (OpenVINO, INT8).

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Pratima Singh - Senior Full-Stack Software Engineer specializing in FinTech, cloud microservices, and blockchain in Tempe, AZ

Pratima Singh

Screened

Senior Full-Stack Software Engineer specializing in FinTech, cloud microservices, and blockchain

Tempe, AZ10y exp
Arizona State UniversityArizona State University

Python/ML engineer with strong DevOps depth: built an end-to-end regime-aware stock prediction system (custom fine-tuned FinBERT sentiment + technical/macro features) delivering a 12% accuracy lift. Also implemented Kubernetes/Helm + Jenkins/GitHub Actions pipelines (including GitOps-style workflows for multi-cloud Hyperledger Besu) and improved deployment speed/stability by ~50% while addressing race conditions and image drift.

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Alex Vo - Staff Backend Software Engineer specializing in telemetry pipelines and observability in San Jose, CA

Alex Vo

Screened

Staff Backend Software Engineer specializing in telemetry pipelines and observability

San Jose, CA3y exp
VMwareUC Irvine

Backend engineer from VMware focused on proprietary enterprise systems (monitoring tools, data pipelines, and APIs). Drove a ClickHouse migration POC (local to remote host) using a dual-write/cutover approach and source-level debugging across Node/driver differences during a Node 12→20 upgrade, and delivered measurable performance gains (~20% CPU/memory improvement) through batching and streaming ingestion.

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Atulya Bist - Junior Data Scientist / Software Engineer specializing in LLM analytics and robotics in Los Angeles, CA

Atulya Bist

Screened

Junior Data Scientist / Software Engineer specializing in LLM analytics and robotics

Los Angeles, CA3y exp
Applied MaterialsUSC

Robotics/ML engineer who implemented TD3 and PPO in PyTorch to solve the challenging OpenAI Gymnasium humanoid-v5 MuJoCo task, including custom networks, rollout logic, and training scripts. Also has hands-on robotics coursework experience with ROS-based RRT motion planning on a real robotic arm, plus practical CI/CD and containerization experience (Docker, Jenkins, GitHub Actions). Currently exploring world models (VAE + sequence generator) using Euro Truck Simulator data.

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Nagarjuna Vaddineni - Mid-level Full-Stack Software Engineer specializing in cloud-native microservices and data pipelines in Seattle, WA

Mid-level Full-Stack Software Engineer specializing in cloud-native microservices and data pipelines

Seattle, WA6y exp
AmazonTexas A&M University-Kingsville

Amazon backend engineer who built and operated high-scale Java Spring Boot microservices on AWS (EKS/EC2) handling millions of daily transactions, with deep experience debugging p95 latency and database/ORM bottlenecks. Shipped an AI-driven real-time personalization feature by integrating SageMaker model inference end-to-end with low-latency caching and graceful fallbacks, and designed robust order/payment orchestration with retries, compensations, and DLQ-based escalation.

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Angie Fathalla - Mid-level Technical Consultant specializing in cloud infrastructure and enterprise automation in Clinton, NJ

Mid-level Technical Consultant specializing in cloud infrastructure and enterprise automation

Clinton, NJ7y exp
IBMNYU

AI/LLM engineer focused on production-grade agent systems in high-stakes workflows, including a tax modernization initiative that automated tax form generation for 50,000 users. Demonstrates strong depth in reliability engineering, evaluation loops, and safe orchestration, with quantified improvements including pass-through gains from 62% to 94%, 30% lower token cost, and accuracy improvement from 88% to 99%.

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BB

Biplob Bidari

Screened

Senior Data Engineer specializing in FinTech analytics and ML data platforms

USA5y exp
Goldman SachsUniversity of the Cumberlands

ML/AI engineer with Goldman Sachs experience building production fraud detection and RAG-based trading insights systems end-to-end. Stands out for combining real-time ML infrastructure, GenAI retrieval systems, and compliance-aware design, with measurable impact including nearly 25% false-positive reduction and improved analyst productivity.

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KC

Kevin Cruz

Screened

Senior Gen AI Engineer specializing in agentic LLM systems

Tempe, AZ15y exp
OpendoorUSC

Built and owned end-to-end production systems for a healthcare platform, including a predictive task recommendation feature (React + FastAPI + ML on AWS ECS) that cut backlog 20% and saved coordinators ~10 hours/week. Also productionized an AI-native RAG system (vector DB + LLM) delivering 40% faster query resolution, and led phased modernization of a monolithic FastAPI service into async microservices using feature flags and canary releases.

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RM

Ruby Medeiros

Screened

Staff SRE and Software Engineer specializing in distributed systems and cloud reliability

11y exp
ArenaNOVA University Lisbon

Built a production B2C behavioral interview system for job seekers using LangGraph/LangChain on AWS Bedrock with Nova models, plus a FastAPI backend and Vercel AI SDK frontend. Stands out for practical agent reliability work: local stress testing, OpenTelemetry-to-Datadog observability, token/cost monitoring, and guardrails to keep conversations on track and resistant to instruction override.

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Akhil Kunala - Mid-level Software Engineer specializing in backend systems and cloud-native FinTech in Seattle, WA

Akhil Kunala

Screened

Mid-level Software Engineer specializing in backend systems and cloud-native FinTech

Seattle, WA5y exp
AmazonUniversity of North Texas

Amazon engineer with 5+ years of experience who built an AI-assisted log investigation and triage workflow that cut debugging time by about 30% during on-call incidents. Combines observability tooling like CloudWatch and Splunk with Python, prompt engineering, and RAG-based diagnostics, and has practical experience orchestrating agentic AI workflows with a strong human-in-the-loop reliability focus.

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Prakash Bhanu - Director of Software Engineering specializing in cloud, platform, and FinTech systems in Sunnyvale, CA

Prakash Bhanu

Screened

Director of Software Engineering specializing in cloud, platform, and FinTech systems

Sunnyvale, CA22y exp
Cast & CrewSofia University

Senior software engineering leader with broad 0-to-1 product experience spanning web apps, microservices, monoliths, messaging platforms, ML/AI products, and large-scale distributed systems. Notable examples include building a payroll/finance product for cast and crew, a distributed messaging platform, and a Walmart application deployed across multiple CDNs and clouds handling hundreds of TPS, with personal ownership across architecture, design, coding, and support.

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SL

S Latha Naidu

Screened

Mid-level Software Engineer specializing in AI-powered full-stack systems

Seattle, WA4y exp
AmazonUniversity of Colorado Denver

Backend-focused engineer with experience at AWS building a global alarm processing platform (Python, Lambda/SQS/DynamoDB) handling traffic spikes and reliability issues; resolved duplicate alerts and latency under load by fixing hot partitions and enforcing idempotency. Previously at Cognizant, built Java/PostgreSQL backend workflows for healthcare dashboards using pre-aggregated summary tables, strong SQL optimization, and state-driven job orchestration with ELK-based observability and production guardrails.

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Sanjay Santhanam - Mid-level AI Software Engineer specializing in LLMs and FinTech data systems in San Jose, CA

Mid-level AI Software Engineer specializing in LLMs and FinTech data systems

San Jose, CA4y exp
Scry AIWestcliff University

Backend/AI systems engineer focused on productionizing agentic document-processing workflows for large financial PDFs. They describe owning deployments end-to-end, combining Python, Redis, LLM function calling, RAG/ReAct-style orchestration, and strong reliability practices to deliver 80% faster processing, reduce parsing errors from 12% to ~1%, and sustain 99.9% uptime in high-concurrency environments.

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