Vetted Data Cleaning Professionals

Pre-screened and vetted.

PG

Mid-level AI/ML Engineer specializing in cloud AI, MLOps, and NLP

Washington, USA4y exp
iLink DigitalFlorida Atlantic University
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DU

Mid-level Data Analyst specializing in marketing analytics and machine learning

Columbus, Ohio4y exp
ElevateMeStevens Institute of Technology
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AG

Mid-level AI/ML Engineer specializing in MLOps and fraud detection

USA4y exp
Northern TrustLewis University
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FH

Mid-level AI Engineer specializing in LLMs, RAG, and enterprise analytics

Santa Clara, CA3y exp
FreightPOPUniversity of Michigan-Dearborn
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SS

Mid-level Full-Stack Software Engineer specializing in AI-powered document platforms

Jersey City, NJ4y exp
TekAssembly CorporationStevens Institute of Technology
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SN

Mid AI/ML Engineer specializing in LLMs, MLOps, and FinTech analytics

India, India3y exp
Eudaimonic Inc.Northeastern University
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Kruti Mehta - Mid-level Software Engineer specializing in backend systems and FinTech analytics in Maryland, USA

Kruti Mehta

Screened ReferencesStrong rec.

Mid-level Software Engineer specializing in backend systems and FinTech analytics

Maryland, USA5y exp
Rose Financial SolutionsGeorge Mason University

Engineer with a pragmatic, high-leverage approach to AI-assisted development: uses AI and multi-agent workflows aggressively for implementation and internal tooling, while maintaining strict human oversight for user-facing features. Stands out for treating agents like junior engineers, breaking work into actionable tasks, and combining robust testing, local E2E validation, and feature-flag rollouts to safely ship production code.

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Pranava Reddy Kothapally - Junior Data Engineer specializing in Azure, CRM data pipelines, and marketing personalization in Hyderabad, India

Pranava Reddy Kothapally

Screened ReferencesStrong rec.

Junior Data Engineer specializing in Azure, CRM data pipelines, and marketing personalization

Hyderabad, India2y exp
TechwaveCleveland State University

LLM/AI engineer who has deployed production RAG conversational analytics and Text-to-SQL systems over Snowflake and curated data marts, emphasizing enterprise-grade guardrails for accuracy, security, and cost. Notable for a structured approach to reducing hallucinations (curated metric/table registry, SQL validation, RBAC, and citation-backed responses) and for building resilient, observable multi-step agent workflows using LangChain/LlamaIndex and Airflow.

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VP

Vikesh Patel

Screened ReferencesStrong rec.

Senior AI/ML Engineer & Data Scientist specializing in LLMs, RAG, and MLOps

Eagan, MN8y exp
Intertech, Inc.Metropolitan State University

ML/NLP practitioner who has delivered production systems in regulated domains, including a healthcare compliance pipeline using RAG (GPT-4/Claude) plus TF-IDF retrieval that increased document review throughput 4.5x. Also has hands-on experience improving fraud detection data quality via entity resolution (Levenshtein, Dedupe.py) validated with A/B testing, and building scalable, monitored workflows with Airflow, CI/CD, and AWS SageMaker.

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AS

Adithya Sharma

Screened ReferencesModerate rec.

Mid-level AI/ML Engineer specializing in MLOps, NLP, and Generative AI

Remote, USA5y exp
EncoraUniversity of Michigan-Dearborn

Built and deployed a production LLM-powered text-to-SQL/document intelligence chatbot on AWS that lets non-technical business users query complex enterprise databases in plain English. Demonstrates deep practical expertise in schema-aware prompting, embeddings-based schema retrieval, SQL safety/validation guardrails, and rigorous offline/online evaluation with human-in-the-loop approvals for risky queries.

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HS

Helly Shah

Screened ReferencesModerate rec.

Junior Data Analyst specializing in business analytics and machine learning

New York, NY2y exp
Handshake AI Solutions, LLCBaruch College (CUNY)

Analytics-focused candidate with hands-on project experience in SQL data preparation and Python-based churn modeling. They demonstrated a practical approach to turning messy multi-source data into reporting tables, validating data quality rigorously, and translating churn insights into targeted retention strategies.

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Ronald Forte - Entry-Level Software Engineer specializing in AI APIs and RAG systems

Ronald Forte

Screened ReferencesModerate rec.

Entry-Level Software Engineer specializing in AI APIs and RAG systems

0y exp
RevatureHunter College (CUNY)

Junior/entry-level AI/LLM engineer who built a production-oriented RAG onboarding and knowledge assistant that ingests GitHub repos and internal sources (e.g., Confluence/Jira) using ChromaDB, with reliability features like retrieval fallbacks, retries, caching, and monitoring. Currently implementing a LangGraph-based multi-agent workflow with intent routing and Pydantic/Magentic-validated structured outputs, plus CI/CD offline evals and online metrics (Grafana/Prometheus) to improve predictability and reliability.

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HP

Hetal Pambhar

Screened ReferencesModerate rec.

Mid-level Data Engineer and Analytics Analyst specializing in business growth and marketing insights

Dallas, TX4y exp
Worldwide ExpressUniversity of North Texas at Dallas

Analytics professional with operations-grounded experience at WWEX Group who built a Snowflake/dbt fleet-efficiency data model combining telematics, ERP, and driver logs into near real-time executive reporting. They pair strong SQL/Python workflow automation with practical stakeholder enablement, and cite measurable impact including cutting reporting time from 72 hours to 15 minutes and helping drive $450K in quarterly fuel savings.

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SS

Mid-level AI Engineer and Data Scientist specializing in LLM agents and RAG systems

Palo Alto, CA5y exp
LemmataUniversity at Buffalo

Built a production-grade LLM evaluation and regression system that stress-tests models across hundreds of iterations, combining LLM-as-judge, semantic similarity, statistical metrics, and rule-based checks, with results delivered via stakeholder-friendly HTML reports and dashboards. Experienced orchestrating multi-agent RAG workflows using LangChain/LangGraph and event-driven GenAI pipelines in n8n integrating OCR, speech-to-text, and external APIs, with strong emphasis on reliability, observability, and explainable failures.

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SS

Shrey Shah

Screened

Junior Data Analyst specializing in BI, SQL, and business analytics

New Jersey, USA3y exp
Dreamline AIRutgers Business School

Analytics professional with experience across Dreamline AI, Ultron Technologies, and Infolabz, building SQL/Python data pipelines and BI dashboards for incentive, FMCG, and retail use cases. Stands out for turning messy multi-source data into trusted reporting, automating recurring analytics, and tying dashboard adoption to measurable business outcomes like 50% faster reporting and 30% ROI improvement.

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FJ

Faisal Javed

Screened

Senior AI/ML Engineer specializing in LLMs, MLOps, and AWS

Carteret, NJ8y exp
SchechterTouro University

Built a production ad-spend optimization system that combined deterministic audit logic with LLM-generated explanations, surfacing severe inefficiencies including 70-90% wasted spend in some Google Ads accounts. Stands out for pairing measurable business impact with pragmatic AI safety and usability decisions, including approval-gated execution and structured, human-readable recommendations.

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RK

Junior Software Engineer specializing in distributed systems and ML platforms

Fullerton, CA1y exp
California State University, FullertonCal State Fullerton

Built and deployed real-world systems end-to-end across security and healthcare contexts: led a 3-person team delivering a university vehicle tracking system with 30% cost savings and 1-year post-launch monitoring. Also implemented a healthcare RAG chatbot with adaptive query routing that cut LLM costs by 40% while maintaining answer accuracy, and has experience debugging non-deterministic LLM behavior in DevOps pipeline automation.

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RR

Mid-level Data Scientist specializing in AI, analytics, and predictive modeling

Boston, MA4y exp
Humanitarians.AINortheastern University

Data analytics and BI professional with experience turning messy institutional and customer data into decision-ready reporting and predictive systems. They combine strong SQL/Python execution with end-to-end ownership of churn analytics, stakeholder alignment, and operational rollout into dashboards and CRM workflows.

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Visswanath Baskaran - Mid-level Data Analyst specializing in BI, ETL, and forecasting in Tampa, FL

Mid-level Data Analyst specializing in BI, ETL, and forecasting

Tampa, FL4y exp
University of South FloridaUniversity of South Florida

Analytics professional with hands-on experience at Charge Dock building SQL- and Power BI-based operational reporting for SLA compliance, uptime, and incident management. Also developed a reproducible Python demand forecasting workflow using Pandas and Statsmodels to support inventory planning, showing a blend of BI, data engineering, and forecasting capability.

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RN

Junior Machine Learning Engineer specializing in data science and automation

Seattle, WA2y exp
Seattle UniversitySeattle University

Built and shipped an end-to-end AI-powered portfolio chatbot, owning the React frontend, FastAPI backend, and FAISS-based retrieval layer. Demonstrates hands-on full-stack product thinking with attention to UI performance, TypeScript maintainability, and post-launch iteration on response relevance and speed.

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KM

Kevan Mehta

Screened

Junior Backend/Cloud Software Engineer specializing in microservices and cost-optimized AWS systems

Remote, USA2y exp
Benda InfotechUniversity of Texas at Dallas

Built a production anomaly-detection workflow at VDOIT for messy cloud billing/cost data, emphasizing validation, idempotency, retries, and monitoring. Delivered measurable impact by preventing ~$50K/month in overspend and improving response time, and is now applying the same multi-step pipeline approach to LLM-based agent workflows.

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Peter Ciccone - Mid-Level Software Developer specializing in .NET web applications on Azure

Peter Ciccone

Screened

Mid-Level Software Developer specializing in .NET web applications on Azure

5y exp
Schultheis & PanettieriFarmingdale State College

Full-stack developer who built an end-to-end billing/allocation/payment and reporting system used daily by a major film-industry union, including queuing-based check assignment, admin auditing, data cleanup tools, and an external reports portal. Also delivered a factory production scheduling/analytics app for a lock manufacturer, and typically implements APIs in C#/.NET with DTO shaping and pub/sub messaging for microservices consistency.

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Sampath Achalla - Mid-level Python Full-Stack Engineer specializing in AI microservices and cloud data platforms in USA

Mid-level Python Full-Stack Engineer specializing in AI microservices and cloud data platforms

USA3y exp
DoJaGaIllinois Institute of Technology

Backend-leaning full-stack engineer in fintech/payments who shipped an end-to-end Stripe payments + webhook system for a financial microservices platform, emphasizing ledger accuracy via idempotency, transactional writes, retries, and DLQs. Also delivered a real-time React/TypeScript payment status dashboard informed by user interviews, and improved production performance by 35% p95 latency through PostgreSQL tuning and Redis caching on AWS.

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