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Vetted Data Preprocessing Professionals

Pre-screened and vetted.

HC

Mid-level Full-Stack & AI Engineer specializing in FinTech and ML-powered applications

Frisco, TX6y exp
Toucan PaymentsCalifornia State University, Northridge
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PB

Mid-level Machine Learning & Robotics Engineer specializing in autonomous UAVs and biomedical ML

Golden, CO5y exp
Colorado School of MinesColorado School of Mines
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AB

Junior Machine Learning Engineer specializing in scalable ML systems and LLMs

Chicago, IL2y exp
Illinois Institute of TechnologyIllinois Institute of Technology
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SP

Senior Software Engineer specializing in AI/ML and cloud backend systems

Santa Clara, CA5y exp
Machine Learning and Safety Analytics LabSanta Clara University
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SL

Senior Data Engineer specializing in Machine Learning and Healthcare Data Platforms

WoodBridge, VA12y exp
Uncommon AnalyticsUniversity of Phoenix
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AR

Senior Full-Stack AI Engineer specializing in LLM and ML-powered SaaS

Sarasota, FL7y exp
GraphiteState College of Florida, Manatee-Sarasota
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TA

Senior Full-Stack Engineer specializing in Python, cloud-native SaaS, and data pipelines

United States8y exp
DataStream
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RP

Rukmini Pisipati

Screened ReferencesModerate rec.

Junior AI/ML Engineer specializing in LLM automation and NLP

Indiana, United States2y exp
Human.ReadableUniversity of Cincinnati

Built and shipped a production LLM hallucination detection and monitoring pipeline using semantic-level entropy (embedding-clustered multi-generation variance) to flag unreliable outputs in downstream automation. Implemented a scalable async architecture (FastAPI + Docker + Redis/Celery) with strong observability (structured logs + PostgreSQL) and developed evaluation loops combining controlled prompts and human review; also partnered with non-technical stakeholders on AI-driven form validation/document processing.

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DS

Dhairya Shah

Screened

Entry-level Machine Learning Engineer specializing in computer vision and systems

Buffalo, NY1y exp
University at BuffaloUniversity at Buffalo

ML-focused builder who has shipped an end-to-end income-class prediction product: built the data pipeline, trained models, deployed via Streamlit with a live UI, and tracked success via accuracy (84%), adoption, and latency. Demonstrates strong practical MLOps instincts (Docker/Streamlit Cloud, logging/monitoring, caching) and data engineering reliability patterns (schema checks, idempotency, retries, backfills) while iterating quickly in ambiguous, solo-project environments.

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VP

Vishesh Patel

Screened

Junior AI/ML Engineer specializing in Python ML, NLP, and model deployment

Piscataway, New Jersey3y exp
Fairfield UniversityFairfield University

Built and productionized a real-time social-media sentiment analysis system used by a marketing team to monitor brand/campaign performance. Experienced in orchestrating LLM workflows with LangChain (validation → prompting → parsing → post-processing), plus monitoring, retraining, and RAG-style retrieval using embeddings/vector stores to keep outputs reliable over time.

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JS

Jatin Soni

Screened

Mid-level Software Engineer specializing in Generative AI and scalable backend systems

Corona, CA3y exp
WellomyTechCalifornia State University, Los Angeles

Backend/AI engineer with production experience in legal tech: built a high-scale licensing/subscription API (FastAPI/Postgres/Stripe) and shipped a RAG-based chatbot for an eDiscovery platform. Designed a robust legal document ingestion workflow that processes thousands of documents into a searchable vector index with clear retry/escalation logic, and has demonstrated measurable Postgres performance wins (200ms to 10ms) using EXPLAIN ANALYZE and composite indexing.

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BM

Mid-level AIML Engineer specializing in production ML and MLOps

West Palm Beach, FL5y exp
EasyBee AIFlorida Atlantic University

ML practitioner who built a production customer risk scoring system to replace slow manual approvals, owning the full pipeline from feature engineering and XGBoost training to deploying a Dockerized FastAPI prediction service. Emphasizes reliability and business-aligned evaluation (recall/ROC-AUC, threshold tuning, drift monitoring) and is comfortable translating model decisions into stakeholder metrics like conversion rate (experience at EasyBee AI).

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VM

Mid-level AI Engineer specializing in LLM agents, RAG, and data pipelines

4y exp
AllyzentUniversity of Central Florida

Built and productionized LLM-powered workflows that generate contextual insights from structured financial data, including prompt/retrieval design, data standardization, and reliability controls like rate limiting and batching. Also diagnosed and fixed real-time failures in an automated order validation system using logs/metrics, staging reproduction, edge-case handling, retries, and alerting, while supporting sales/customer teams with demos, scripts, and FAQs to drive adoption.

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BK

Intern Full-Stack/ML Engineer specializing in cloud-native web apps and LLM systems

Pasadena, CA2y exp
BloophEastern Illinois University

Machine learning lab assistant at Eastern Illinois University who productionized a voice-enabled conversational AI system: redesigned it with RAG, LoRA fine-tuning (including text-to-SQL), and safety guardrails, then deployed a scalable API supporting ~1,000 daily queries. Also partnered with customer-facing teams during a BlueFi internship by building demos/APIs and accelerating releases via Terraform + AWS CI/CD automation.

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SK

Sana Khan

Screened

Mid-Level Software Developer specializing in cloud-native microservices, iOS, and ML deployment

OK, USA3y exp
Oklahoma Christian UniversityOklahoma Christian University

Backend engineer with production ERP experience deploying microservices and improving performance/reliability using a metrics-driven approach (logs, latency, error rates). Has hands-on cloud/hybrid operations across AWS and Azure with Docker/Kubernetes, and has resolved real-world mobile sync issues by tuning timeouts/retries and reducing payload sizes. Builds configurable Python services to deliver customer-specific behavior without destabilizing the core codebase.

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YM

Intern AI/ML Engineer specializing in LLMs, RAG, NLP, and MLOps

Overland Park, USA3y exp
Acclaim LogixUniversity of Central Missouri

Built and deployed a production RAG-based internal document Q&A system using LangChain, vector search, and a dockerized FastAPI LLM service. Focused on reliability by systematically reducing hallucinations and improving retrieval through prompt grounding/abstention strategies, chunking and top-k tuning, and iterative evaluation with logged metrics and manual validation.

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AG

Athwika Gade

Screened

Junior AI & Data Engineer specializing in ML systems, ETL pipelines, and GenAI

Pittsburg, KS2y exp
Connex AIPittsburg State University

LLM/RAG engineer at Connex AI who built and deployed a production healthcare agent to extract clinical insights from medical data/notes. Strong focus on real-world reliability—hallucination mitigation (citations, schema validation, confidence thresholds, rejection logic), custom LangChain orchestration (query rewriting, fallback paths), and production evaluation/observability—while collaborating closely with clinical SMEs to ensure clinical fit and time savings.

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KH

Mid-Level Unity Developer specializing in VR/AR/XR and mobile multiplayer

Poznań, Poland6y exp
Immersion LabsBelarusian National Technical University

Unity VR developer who has shipped multiple Meta Quest games and navigated strict Meta QA/product requirements, with a strong focus on profiling-driven FPS optimization. Co-developed the Meta-delivered title "Shark Bait VR" (2-person dev team), tackling VR comfort (anti-nausea swimming), realistic rope behavior, and fish AI, and has also implemented cross-platform mobile push notifications via Firebase/APNS with Jenkins+CocoaPods.

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AR

Asim Raja

Screened

Mid-level Game Developer specializing in Unity/Unreal, AR/VR, and multiplayer systems

Islamabad, Pakistan6y exp
INTELGENCYNational University of Modern Languages

Unity VR developer who has shipped Meta Quest titles while owning full end-to-end delivery: gameplay, UI, database/backend, blockchain, web integrations, IAP, and final build publishing. Notably solved a Meta SDK IAP callback regression by identifying the issue with Meta support and safely rolling back specific SDK code, and has implemented motion/walking tracker systems with ML-driven opponent behavior.

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PR

Entry-Level AI Engineer specializing in LLM systems and RAG

Bengaluru, India1y exp
Utthunga Technologies Pvt LtdWayne State University
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SS

Mid-Level Full-Stack Software Engineer specializing in cloud-native security & compliance platforms

Fair Oaks, CA4y exp
Technology Crest CorporationUniversity of Houston-Clear Lake
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TT

Intern Full-Stack Software Engineer specializing in web apps, IoT systems, and applied AI

Seattle, Washington
Vishwakarma Institute of Information TechnologyCalifornia State University, Los Angeles
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LD

Mid-level AI/ML Engineer specializing in LLM-powered RAG systems and MLOps

West Port, CT4y exp
XnodeUniversity of Southern Mississippi
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CM

Mid-level Data Scientist specializing in computer vision and behavioral analytics

Chicago, IL5y exp
AgroAINational Louis University
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