Vetted Data Validation Professionals

Pre-screened and vetted.

SK

Sai Krishna Sriram

Screened ReferencesStrong rec.

Mid-level Generative AI & ML Engineer specializing in production LLM and RAG systems

Temecula, California3y exp
CLD-9University of Colorado Boulder

AI/ML engineer who shipped a production blood-test report understanding and personalized supplement recommendation product, using a LangGraph multi-agent pipeline on AWS serverless with OCR via Bedrock and RAG over vetted clinical research. Also built end-to-end recommender system pipelines at ASANTe using Airflow (ingestion, embeddings/features, training, registry, batch scoring/monitoring) with KPI reporting to Tableau, with a strong focus on safety, evaluation, and measurable reliability.

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HK

Himanshu Kiran Garud

Screened ReferencesStrong rec.

Mid-level Software Engineer specializing in full-stack systems and applied AI

Seattle, WA5y exp
Rebecca Everlene Trust CompanyUniversity of North Carolina at Charlotte

Backend/ML engineer who has built both enterprise data pipelines and real-time AI products: modular Python (Flask/FastAPI) services integrating automation scripts and low-latency ML inference (MediaPipe, PyTorch) plus OpenAI-powered feedback. Demonstrated measurable performance wins (~30% faster HR workflows; ~40% faster AWS pipelines across 100+ Oscar Health feeds) and strong multi-tenant/data-isolation patterns (schema-based isolation, RBAC, microservices).

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RG

Rithiwik Garuda

Screened ReferencesStrong rec.

Mid-level Full-Stack Engineer specializing in cloud-native, event-driven data platforms

5y exp
InfosysUniversity of New Haven

Backend/data engineer with hands-on production experience building Python (FastAPI/Flask) data enrichment services secured with Okta OAuth2 and monitored via Splunk/Dynatrace. Has delivered AWS event-driven and data-migration solutions (Lambda + Kafka to EKS; Glue from on-prem Oracle to S3/data lake) and modernized Informatica match/merge logic to cloud services using parallel-run parity validation and stakeholder sign-off.

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TA

Tanweer Ashif

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer and Data Scientist specializing in LLMs and MLOps

Buffalo, NY5y exp
University at BuffaloUniversity at Buffalo

Data science/AI intern at University at Buffalo Business Services who built and deployed production systems spanning classic ML and LLM assistants. Delivered real-time competitor intelligence for a Cornell-partnered, $1B beverage launch by scraping/cleaning 5,000+ SKUs and deploying models via API, then built a domain-aware LLM assistant to modernize Excel-based workflows with strong grounding, privacy controls, and sub-5s latency.

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Mark Kevin Macadangdang - Senior Solutions Architect specializing in enterprise integrations for PropTech and facilities management in Peterborough, Canada

Mark Kevin Macadangdang

Screened ReferencesStrong rec.

Senior Solutions Architect specializing in enterprise integrations for PropTech and facilities management

Peterborough, Canada12y exp
MRI SoftwareCentral Luzon State University

Facilities-management-focused functional consultant/business analyst with nearly a decade in CAFM/CMMS-aligned implementations since 2016, centered on MRI/FSI Evolution. Brings unusually strong depth across workflow automation, cross-system integrations, and finance/compliance-heavy operational processes, including SOR-based claims, contractor compliance, and RCTI invoicing.

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VK

VAISHNAVI KOTHAMIRKAR

Screened ReferencesStrong rec.

Mid-level Business Analyst specializing in banking, pharma, and enterprise systems

Florida, USA5y exp
Clarium Managed ServicesFlorida International University

Analytics professional with hands-on experience spanning enterprise supply chain data and workforce analytics. They’ve worked on a Manhattan Active WMS implementation for a pharmaceutical client integrating MAWM, JD Edwards, and Boomi, and also built SQL/Python/Tableau solutions for BankUnited/FIU to standardize retention and engagement reporting. Strong fit for roles requiring messy data wrangling, KPI operationalization, and stakeholder-trusted dashboards.

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WP

WASANTA PRUTTISARIKORN

Screened ReferencesStrong rec.

Mid-level Frontend Software Engineer specializing in internal web applications

New York, NY5y exp
AnnalectFlatiron School

Front-end engineer focused on sophisticated internal operational tools, including a campaign planning interface for advertising and operations teams with connected workflows and data-heavy tables. Stands out for building reusable component patterns, improving table usability and performance, and using TypeScript carefully to keep UIs stable as APIs evolve.

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Pranathi Kamisetty - Intern AI Engineer specializing in LLMs, NLP, and conversational search in Chicago, Illinois

Pranathi Kamisetty

Screened ReferencesStrong rec.

Intern AI Engineer specializing in LLMs, NLP, and conversational search

Chicago, Illinois1y exp
G19 STUDIOUniversity of Illinois Chicago

Student building a production trip-planning LLM agent (LangChain + Streamlit) that routes user queries across multiple tools (maps/places/Wikipedia). Implemented zero-shot multi-label intent detection with priority rules to handle multi-intent requests, and collaborates with a startup product manager to shape tone, features, and user experience.

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KK

Ketan Kshirsagar

Screened ReferencesModerate rec.

Mid-level Business Analyst specializing in data analytics and BI

Palm Springs, FL4y exp
Palm Beach Accountable Care OrganisationNortheastern University

Healthcare analytics professional with hands-on experience turning messy claims, eligibility, and utilization data into validated BI-ready models using SQL and Python. They combine strong data engineering and KPI design skills with stakeholder-facing delivery, including Power BI prototyping, retention metric operationalization, and analyses that supported care management interventions and cost-control decisions.

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RM

Rishikiran Munuswamy

Screened ReferencesModerate rec.

Mid-level Full-Stack Product Engineer specializing in AI agents and scalable platforms

Seattle, WA4y exp
Oldwired LLCSeattle University

Built an AI-powered stylist / outfit recommendation product end to end, spanning React/TypeScript frontend, Postgres data modeling, serverless backend flows, and LLM-driven recommendation/explanation systems. Stands out for combining hands-on full-stack execution with strong product judgment around ambiguity, UX polish, reusable primitives, and AI trust/explainability.

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AN

Abhishek Namdev Sawant

Screened ReferencesModerate rec.

Mid-Level Backend Software Engineer specializing in Java microservices and cloud platforms

Seattle, WA5y exp
Ecological Servants ProjectSeattle University

Backend/platform engineer with payments and insurance domain experience (Cognizant), owning high-volume production systems end-to-end. Shipped a Spring Boot payment tokenization service with strong observability and phased migration that cut transaction latency ~30% and improved payment efficiency ~25%. Also productionized an ML-driven financial health/risk analytics pipeline with near real-time dashboards across 70+ schools, emphasizing interpretability, data quality, and drift monitoring.

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Affaf Imran - Director-level Gameplay Engineer specializing in Unreal, Unity, multiplayer, and VR in USA, Remote

Affaf Imran

Screened ReferencesModerate rec.

Director-level Gameplay Engineer specializing in Unreal, Unity, multiplayer, and VR

USA, Remote10y exp
NeoWorlder Enterprises, Inc.Capital University of Science & Technology

Gameplay/engine developer who rebuilt a legacy Unity VR firetruck simulator into a modular, state-driven training system used for realistic firefighter scenarios, while also working on a massive AI-native metaverse platform with backend-driven world generation and data pipelines. Brings an unusual mix of serious-simulation VR, multiplayer/backend systems, and large-scale world tooling across both Unity and Unreal.

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BK

Bhanu Kiran

Screened

Mid-level Data Scientist & AI Engineer specializing in NLP, LLMs, and predictive analytics

TX, USA4y exp
Deleg8Syracuse University

AI Engineer with production experience building an LLM-powered conversational scheduling assistant (rules-based + OpenAI GPT agents) and improving responsiveness by ~40% through architecture optimization. Strong in orchestration (Airflow), containerized deployments, and data quality (Great Expectations/PySpark), with prior work automating population health reporting pipelines (Azure Data Factory → Snowflake) and delivering insights via Tableau to non-technical stakeholders.

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MA

Mahmoud Ayyad

Screened

Senior Computer Vision Engineer specializing in AI/ML for scientific imaging

Hoboken, NJ3y exp
Stevens Institute of TechnologyStevens Institute of Technology

Computer-vision engineer with hands-on experience designing UAV-based production imaging systems for object detection/tracking, including camera selection and resolution/zoom tradeoffs. Improved segmentation/measurement accuracy by implementing orthorectification using ground points plus intrinsic/extrinsic calibration to correct perspective distortion, and has built Python/OpenCV pipelines (including barcode-focused grayscale processing and multithreaded execution).

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PC

Mid-level QA Engineer specializing in API and automation testing

Carrolton, TX3y exp
Cognitive Data IntelligenceUniversity of North Texas

QA automation engineer focused on backend/API quality who owned an end-to-end API regression suite and integrated Cypress/JS automation into GitLab CI with smoke-vs-nightly regression gating. Caught a critical auth security regression (expired tokens returning 200 instead of 401) before production and is strong in stabilizing flaky tests using network interception and actionable CI reporting.

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fahliyanto prasetyo - Mid-level QA Engineer specializing in digital banking mobile and web testing in East Jakarta, Indonesia

Mid-level QA Engineer specializing in digital banking mobile and web testing

East Jakarta, Indonesia8y exp
JeniusSTMIK WIT Cirebon

QA professional with experience spanning mobile/web applications plus API and backend behavior testing, using Jira and TestRail along with exploratory/regression and compliance-focused verification. Describes a structured approach to meeting tight deadlines by breaking work into modules, estimating test execution timelines, and using AI tools to accelerate documentation and analysis when test case volume is high. No direct console testing or TRC/XR/LOT certification experience yet, but has a compliance-testing foundation.

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Isha Harne - Intern Software Engineer specializing in ML applications and LLM platform engineering in New York, NY

Isha Harne

Screened

Intern Software Engineer specializing in ML applications and LLM platform engineering

New York, NY1y exp
Binghamton UniversityBinghamton University

Full-stack engineer who builds and scales customer-facing and internal AI products end-to-end (React/TypeScript/FastAPI/MongoDB) with strong product instrumentation and rapid MVP iteration. Built an AI-powered code review assistant adopted across teams and integrated into CI/CD, reducing manual review time by 30%+, and has hands-on experience with LLM retrieval/reasoning systems (LangChain + FAISS) and microservices scaling using RabbitMQ, Docker, and AWS.

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Pravelliika Chirivella - Mid-level Full-Stack Developer specializing in Django/React and FinTech automation in New York, NY

Mid-level Full-Stack Developer specializing in Django/React and FinTech automation

New York, NY3y exp
ClerqUniversity at Albany

Product-minded full-stack engineer who owns customer-facing products end-to-end and iterates quickly using MVP validation, feature flags, automated testing, and staged rollouts. Has built TypeScript/React systems with modular backends and designed microservices with async messaging (RabbitMQ), handling scale issues like ordering, retries, and idempotency. Also delivered an internal ops automation tool with a self-serve real-time workflow dashboard that reduced errors and drove rapid adoption.

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Gugun Ruhyat - Mid-level QA Engineer specializing in manual and API automation testing in Kuningan, Indonesia

Gugun Ruhyat

Screened

Mid-level QA Engineer specializing in manual and API automation testing

Kuningan, Indonesia5y exp
MSIG LifeUniversity of Kuningan

No hands-on console game testing experience, but reports being fairly familiar with console certification frameworks (Sony TRCs, Microsoft XR, Nintendo LOT) and can articulate key compliance areas (network, save data, performance/stability, legal/regional, DLC). Uses AI tools in day-to-day QA work to refine database queries and test cases, and prioritizes production issues first under deadline pressure.

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Deva Sai Kumar Bheesetti - Mid-level Full-Stack Engineer specializing in data automation, cloud & AI in Lowell, MA

Mid-level Full-Stack Engineer specializing in data automation, cloud & AI

Lowell, MA5y exp
University of Massachusetts LowellUniversity of Massachusetts Lowell

JavaScript engineer who effectively "maintains" an internal open-source-style React/Node.js shared library used by multiple teams—owning API stability, semantic versioning, CI/testing, logging, and documentation. Demonstrates strong cross-team debugging and change-management skills (schema-driven refactors, feature flags, validation layers) to ship new features without breaking existing workflows, plus a profiling/benchmarking-driven approach to performance.

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Tejas Belakavadi Kemparaju - Mid-Level Software Engineer specializing in backend, microservices, and ML systems in Newark, NJ

Mid-Level Software Engineer specializing in backend, microservices, and ML systems

Newark, NJ3y exp
Exito InfynitesNJIT

Primary designer/implementer/maintainer of an open-source JavaScript library for programmatic SSML generation and validation in text-to-speech pipelines. Focused on safety-by-default APIs with vendor-specific extension adapters, strong backward compatibility/deprecation practices, and measurable performance gains by removing redundant validation stages. Emphasizes developer experience through example-driven documentation and systematic community issue triage.

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Sai Srujan Vemula - Mid-level Full-Stack Developer specializing in Java/Spring Boot and React on AWS in CT, USA

Mid-level Full-Stack Developer specializing in Java/Spring Boot and React on AWS

CT, USA3y exp
Meta SystemQuinnipiac University

Full-stack engineer with enterprise experience at Meta System and DXC, owning end-to-end delivery of a shipment visibility portal (React UI in Liferay DXP + Java/Spring Boot REST APIs) with Dockerized deployments and automated test coverage. Has hands-on AWS work across EC2/Lambda/S3 and multiple databases (DynamoDB, RDS, Neptune, DocumentDB), plus built a Python/Flask data migration platform with validation for correctness and repeatability.

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AM

Aakash Malhan

Screened

Mid-level Business Analyst and Data Science Research Assistant specializing in analytics and AI

Tempe, AZ6y exp
W. P. Carey School of Business, ASUArizona State University

BI/analytics candidate with healthcare and product analytics experience spanning Honor Health and ASU. They’ve worked on messy multi-system hospital supply data and also owned analytics for an AI-powered tax assistant, with quantified outcomes including 97% faster search, 92% retrieval accuracy, 30% fewer ad hoc procurement requests, and 15% lower operational cost.

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