Vetted Regression Testing Professionals

Pre-screened and vetted.

LB

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

Bellevue, WA5y exp
AmazonMissouri State University
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JW

Senior AI/ML Engineer specializing in conversational AI and contact center automation

Alpharetta, GA10y exp
PegasystemsGeorgia Tech
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TS

Senior QA Lead specializing in video game testing (mobile, PC, console)

Richardson, TX14y exp
GlobalStepPurdue University
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DC

Junior Software Engineer specializing in data engineering and machine learning

Seattle, WA3y exp
AmazonUniversity of Wisconsin–Madison
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SK

Mid-level Software Engineer specializing in distributed systems and network infrastructure

Remote, United States5y exp
Neuro Leap CorpUniversity of Illinois Urbana-Champaign
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WC

Senior Full-Stack Software Engineer specializing in FinTech compliance

Tampa, FL8y exp
MicrosoftStony Brook University
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DC

Executive IT leader specializing in digital transformation and enterprise systems

Minnesota, USA28y exp
Heliene Inc.St. John's University
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SD

Senior Technical Program Manager specializing in SaaS product delivery

Sunnyvale, CA11y exp
DocuSignSan Jose State University
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TM

Senior Data Engineer specializing in cloud data platforms and big data pipelines

Austin, TX11y exp
Accenture
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VD

Vismay Devjee

Screened ReferencesModerate rec.

Mid-level GenAI Engineer specializing in AI agents, RAG, and LLM evaluation

Boston, MA2y exp
Fidelity InvestmentsNortheastern University

Asset Management Risk professional at Fidelity Investments who built and productionized an agentic RAG platform enabling compliance and analysts to query 10,000+ fund documents with cited answers in seconds. Implemented structure-aware semantic chunking (AWS Textract), hierarchical retrieval, and hybrid search to raise accuracy from 68% to 94%, and built an evaluation framework tracking accuracy/latency/cost/hallucinations—delivering 40+ hours/month saved and zero critical production failures.

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YA

Yousif Aluzri

Screened

Senior UNIX/Linux Systems Engineer specializing in telecom mobility and automation

Portland, OR29y exp
CiscoUniversity of Colorado Boulder

Commercial UNIX specialist and former tech lead for a UNIX-based telco appliance spanning 11 SPARC Solaris servers, with strong Solaris troubleshooting (truss/iostat/netstat/snoop) and extensive shell scripting automation for safer, more consistent operations. Has executed multiple Solaris major-version migrations (6→8→10→11) and brings broad cross-UNIX platform experience (Solaris/SunOS/HP-UX/IRIX/OSF/1), while actively looking to deepen hands-on AIX/IBM Power expertise.

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DV

Senior Software Engineer specializing in cloud backend systems and LLM-powered agents

Seattle, WA5y exp
AmazonSan José State University

Amazon Fire TV Devices engineer who built and shipped a production LLM-powered lab triage and validation system that grounds recommendations in internal runbooks/known-issue data and pushes evidence-based actions via dashboards and Slack. Emphasizes safety and measurability with structured JSON outputs, replay-based evaluation on historical incidents, and production metrics (e.g., disagreement rate and time-to-first-action), plus cost/latency optimizations like caching, batching, and rule-based fast paths.

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AC

Mid-level AI/ML Engineer specializing in LLM applications and cloud-native systems

Remote2y exp
PYRAMYDCarnegie Mellon University

LLM engineer who has shipped production AI systems, including an RFP requirements extraction platform (OpenAI o4-mini + Azure AI Search + FastAPI) achieving 90%+ accuracy and ~5x throughput through grounding, structured outputs, parallelization, and caching. Also partnered with legal/compliance stakeholders at Nexteer Automotive to deliver an AI document comparison tool with traceability and confidence indicators, adopted by non-technical users and saving ~2 FTEs of review time.

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KS

Karan Shah

Screened

Mid-level Software & Robotics Engineer specializing in autonomous systems and ROS 2

USA3y exp
Boston DynamicsUniversity of Texas at Arlington

Robotics software engineer focused on production-grade autonomy in GPS-denied environments, building full navigation stacks (perception, EKF/UKF sensor fusion, planning, control) in ROS2. Integrated YOLOv8/semantic segmentation/RL policies into real-time NAV2 pipelines via a custom perception-aware costmap layer, with emphasis on deterministic control loops, embedded GPU performance, and robust system observability/fault tolerance.

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Vismay Patel - Senior AI & Machine Learning Engineer specializing in NLP, GenAI, and MLOps in Berkeley, CA

Vismay Patel

Screened

Senior AI & Machine Learning Engineer specializing in NLP, GenAI, and MLOps

Berkeley, CA7y exp
Kaiser PermanenteSan Francisco State University

ML/GenAI practitioner with healthcare domain depth who built and deployed a production cervical-cancer EMR classification system using a hybrid rules + medical BERT approach, optimized for high recall under severe class imbalance and PHI constraints. Experienced running end-to-end production ML/LLM pipelines with Apache Airflow (validation, promotion/rollback, monitoring, retraining) and partnering closely with clinicians to calibrate thresholds and implement human-in-the-loop review.

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TY

Timothy Yeav

Screened

Senior AI/ML Engineer specializing in Generative AI and FinTech

Bronx, NY8y exp
InsitroNew York City College of Technology (CUNY)

Built end-to-end LLM/RAG systems for biological data and scientific literature analysis in a drug discovery setting, helping researchers explore disease insights and treatment hypotheses faster. Combines applied GenAI product work with strong production engineering, including monitoring, retrieval optimization, reusable Python services, and scalable deployment on AWS/Kubeflow.

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Devika gade - Mid-level Full-Stack Developer specializing in FinTech and cloud-native applications in Remote, USA

Devika gade

Screened

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

Remote, USA4y exp
PlaidChristian Brothers University

Full stack developer with strong implementation ownership across cloud deployments, integrations, and AI-powered support automation. They have put LLM/RAG workflows into production with measurable impact—cutting first response time by nearly 40%—and show unusual depth in debugging non-deterministic AI incidents, improving observability, and turning messy document inputs into reliable API-driven pipelines.

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CS

Mid-level Applied AI Engineer specializing in LLM infrastructure and model optimization

San Jose, CA3y exp
AMDUSC

LLM engineer who has deployed privacy-preserving, real-time workplace risk monitoring over massive enterprise chat/email streams, tackling latency, hallucinations, and extreme class imbalance with model benchmarking, RAG + fine-tuning, and a pre-filter alerting layer. Also built an agentic legal contract drafting system (Jurisagent) using LangGraph/LangChain with deterministic multi-agent control flow, structured outputs, and reliability-focused evaluation/telemetry.

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YK

Junior AI/ML Engineer specializing in applied LLMs, security, and reinforcement learning

New York, USA2y exp
New York UniversityNYU

Built and shipped a production LLM-powered investor research feature for a fintech product, focused on grounded answers and minimizing hallucinations. Implemented retrieval-quality and evidence-coverage gating with clear refusal fallbacks, and evaluates systems with regression tests and metrics like correct-refusal rate, hallucination rate, and latency. Comfortable orchestrating workflows with LangChain or custom Python depending on production needs.

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YP

Mid-level AI/ML Engineer specializing in Databricks, MLOps, and real-time fraud detection

The Colony, TX4y exp
DatabricksUniversity of North Texas

ML/LLM engineer building production, real-time fraud detection for financial transactions using a two-tier architecture (fast ML + GPT) to deliver both low-latency decisions and analyst-friendly risk explanations. Experienced orchestrating end-to-end retraining, drift monitoring, and automated model promotion with Databricks Jobs/Workflows and MLflow, and partnering closely with fraud analysts to tune alerts, thresholds, and dashboards.

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RC

Richard Cerow

Screened

Director of Marketing Technologies specializing in scalable web platforms for gaming

El Segundo, CA19y exp
KraftonUniversity of Notre Dame

Player-coach engineering leader focused on consumer-grade video/multimodal products and high-reliability identity/auth experiences. Led design and implementation of multi-step mobile login/MFA flows with telemetry-driven funnel improvements, shipped Node services and security fixes, and owned auth incidents end-to-end using RUM and step-level instrumentation. Introduced feature-flagged delivery and targeted review/testing practices to speed iteration ~20–30% while keeping login stability high.

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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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