Vetted Data Ingestion Professionals

Pre-screened and vetted.

MC

Mid-level Full-Stack Java Developer specializing in cloud-native web applications

Washington, D.C.3y exp
Mark LabsUniversity of Southern Mississippi
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AM

Mid-level Applied AI Engineer specializing in LLMs, Prompt Engineering, and RAG

United States (Remote)4y exp
SprinklrOklahoma City University
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MP

Mid-Level Full-Stack Software Developer specializing in Java/Spring and JavaScript

3y exp
AssurityUniversity of Texas at Arlington
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BY

Junior Software Engineer specializing in distributed systems and cloud infrastructure

Remote, USA1y exp
MoyynGeorge Washington University
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BS

Mid-level AI/ML Engineer specializing in NLP, LLMs, and RAG systems

CA, USA5y exp
DXC TechnologyCalifornia State University, Long Beach
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RB

Junior AI Engineer specializing in RAG systems and full-stack development

Chicago, IL1y exp
University of Illinois ChicagoUniversity of Illinois Chicago
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AR

Mid-level AI/ML Engineer specializing in MLOps and healthcare analytics

Houston, TX4y exp
Graviti EnergyUniversity of Texas at Arlington
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MV

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

Houston, TX5y exp
Neptune TechnologiesNortheastern University
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HK

Mid-Level Software Developer specializing in backend systems and data engineering

USA4y exp
Cohere HealthUniversity of Illinois Springfield
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AP

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

4y exp
Healthcare, Inc.Stevens 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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PD

Mid-level XR/3D Visualization Developer specializing in real-time spatial computing

Trento, Italy
Politecnico di Milano
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MH

Mid-level SQL Developer specializing in MySQL, ETL, and cloud data pipelines

Miami, FL6y exp
Summit Consulting, LLC
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RM

Ruthvika Mamidyala

Screened ReferencesStrong rec.

Mid-level Data Scientist specializing in GenAI, RAG, and predictive modeling

Hyderabad, India3y exp
TenXengageUniversity of North Carolina at Charlotte

Backend engineer who built and evolved Python/FastAPI services (including AWS-deployed ML prediction APIs) for real-time profitability and risk insights at TenXengage. Emphasizes pragmatic architecture, strong validation/observability, and secure access controls (RBAC + row-level filtering), and has led safe migrations via parallel runs and incremental rollouts; reports ~20% forecasting accuracy improvement.

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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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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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SS

Sawyer Sweet

Screened ReferencesModerate rec.

Mid-Level Full-Stack Developer specializing in civic tech and data-driven web apps

6y exp
LawBee

Built and owned an end-to-end Python/Postgres job-tracker backend that scrapes job postings (including LinkedIn) using Selenium-driven real-browser automation, with deduplication and data-quality filtering. Has practical experience migrating deployments from DigitalOcean to Vercel and emphasizes documentation, roadmapping, and testing as part of an iterative delivery cycle.

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BR

Benjamin Ross

Screened

Senior Backend/Cloud Developer specializing in AWS serverless and legacy modernization

Tempe, Arizona12y exp
AcholyteMonmouth University

AWS-focused backend/data engineer with hands-on production experience building serverless APIs (Lambda/API Gateway) secured with Cognito/JWT, deploying via Terraform + CI/CD, and managing secrets with Secrets Manager/Parameter Store. Also built AWS Glue ETL from S3 to RDS with schema evolution and data-quality controls, modernized a monolith into microservices using parallel testing, and delivered major SQL performance gains (minutes to seconds) while owning incident response for batch pipelines.

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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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SR

Mid-level Full-Stack Engineer specializing in backend APIs on AWS (Healthcare & FinTech)

Cary, NC4y exp
YUG TechnologiesIllinois Institute of Technology

Backend engineer who evolved and migrated a real-time smartwatch telemetry ingestion/analytics platform in a healthcare context, focusing on reliability under poor network conditions. Experienced with Python/FastAPI and Java microservices, PostgreSQL performance tuning, and production-grade security (JWT/OAuth, RBAC, RLS) with incremental rollout and parallel-run migration strategies.

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DD

Mid-level Full-Stack Engineer specializing in Java/Spring, React, and AWS cloud platforms

California, USA4y exp
BrillioSyracuse University

Full-stack/product-leaning engineer in logistics and high-traffic portals who ships production AI features: built an AI-assisted shipment status Q&A system using Pinecone + GPT-4 and a high-volume Python ingestion pipeline (500K+ records/day), delivering 35% fewer support tickets and cutting resolution time from 11 to 4 minutes. Also led a legacy Angular-to-React/TypeScript rebuild that boosted Lighthouse performance from 60 to 90, and has hands-on AWS EKS operations experience including resolving a 3x traffic scaling incident.

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NT

Mid-level AI Engineer specializing in ML, LLM applications, and data automation

Atlanta, GA4y exp
Exus Renewables North AmericaGeorgia State University

Data/ML practitioner who has built a production RAG-based knowledge assistant integrated into Microsoft 365/internal dashboards to help employees query internal documents in plain English. Experienced orchestrating and hardening ETL pipelines with Airflow and Azure Data Factory (validation, retries, monitoring) and running end-to-end model evaluation and production performance tracking via Power BI.

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