Vetted pandas Professionals

Pre-screened and vetted.

VN

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

Newark, DE6y exp
University of DelawareUniversity of Delaware
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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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UK

Intern Full-Stack Software Engineer specializing in cloud, microservices, and ML/NLP

India3y exp
Hue LogicsSan José State University
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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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TT

Mid-Level Software Engineer specializing in AI/ML, cloud deployment, and full-stack systems

Boston, Massachusetts6y exp
West Virginia State University R&D CorporationWest Virginia State University
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SM

Mid-level Data Analyst specializing in BI and healthcare insurance analytics

Birmingham, AL5y exp
RxBenefitsSaint Peter's University
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HT

Mid-level Data Analyst specializing in analytics, AI, and business intelligence

Jersey City, NJ5y exp
New Jersey City UniversityNew Jersey City University
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SP

Mid-level Data Analyst specializing in business intelligence and customer analytics

Texas, USA4y exp
Pike SolutionsUniversity of North Texas
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RA

Mid-level Python Developer specializing in backend APIs and ETL systems

Brooklyn, NY3y exp
MMC GlobalNJIT
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VB

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

Dallas, TX5y exp
GokatechCentral Michigan University
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AA

Junior Software Engineer specializing in ML inference infrastructure

California, USA2y exp
California State University, ChicoCalifornia State University, Chico
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S.

Senior Backend Engineer specializing in cloud-native microservices and AI integrations

Remote, India4y exp
TuringChandigarh Group of Colleges
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HA

Senior Full-Stack Software Engineer specializing in AI/LLM-powered web applications

Virginia, United States9y exp
Futuristic Labs
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MK

Senior Software Engineer specializing in AI/ML systems

Stafford, VA7y exp
Intellirent
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VA

Mid-level AI Engineer specializing in agentic LLM workflows and RAG systems

MI, USA3y exp
University of Michigan-Dearborn
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MA

Senior Software Engineer specializing in AI/ML and backend systems

Stafford, VA7y exp
Innowise
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Avni Tripathi - Mid-level Data Scientist specializing in NLP, RAG, and information retrieval for RegTech in Gurgaon, India

Avni Tripathi

Screened ReferencesModerate rec.

Mid-level Data Scientist specializing in NLP, RAG, and information retrieval for RegTech

Gurgaon, India5y exp
ZIGRAMBanasthali Vidyapith

Built and deployed a production document Q&A/research platform that combines semantic search (vector DB embeddings) with structured knowledge-graph querying to reduce analyst research time. Used in high-stakes domains like Politically Exposed Person profiling and extracting critical information from ESG/regulatory documents, with a human-in-the-loop evaluation process (precision@k and source-text highlighting) to ensure accuracy.

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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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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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CK

Entry-Level AI Engineer specializing in NLP and LLM-powered applications

Fairfax, VA1y exp
George Mason UniversityGeorge Mason University

AI engineer who built an agentic, production-deployed LLM workflow for tobacco violation parsing and automated multi-case creation, using six specialized agents and a human-in-the-loop confidence-threshold routing design. Addressed data privacy constraints by generating synthetic datasets with LLM prompting, and orchestrated reproducible end-to-end pipelines in LangChain with robust testing and evaluation (precision/recall, micro-F1).

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TS

Tirth Shah

Screened

Mid-level AI/ML Engineer specializing in anomaly detection, data tooling, and cloud-native systems

Chico, CA4y exp
Chico State EnterprisesCalifornia State University, Chico

Backend/platform engineer who built an LLM-driven QA automation system (“mockmouse”) using a Flask orchestration microservice, Socket.IO real-time updates, Redis caching, and strict Pydantic schemas to turn prompts into reliable action graphs and automated browser tests. Has hands-on Kubernetes delivery experience (Docker/Helm/Jenkins) and has supported large migration programs, validating ETL cutovers with 1M+ synthetic records and rigorous output comparisons; also built event-driven monitoring/anomaly detection streaming into Grafana.

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SB

Samuel Braude

Screened

Junior Computer Science student specializing in robotics, ML, and quantum computing research

San Diego, CA2y exp
San Diego State UniversitySan Diego State University

Hands-on engineer who has taken an LSTM Bitcoin forecasting model from notebook to a production-grade, monitored API (Docker/Gunicorn/Nginx, Prometheus/Grafana, blue-green rollback) delivering 99.9% availability and ~110–120ms p95 latency. Also built an RFID self-checkout prototype spanning Raspberry Pi + firmware + networking, using deep instrumentation to eliminate double-charges/timeouts (<0.1%) and reduce checkout time ~20% through idempotency, debounce logic, and hardware fixes.

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