Vetted Azure Synapse Analytics Professionals

Pre-screened and vetted.

KN

Mid-level AI Data Scientist specializing in financial risk, fraud detection, and NLP/LLM systems

USA4y exp
Bank of AmericaUniversity of Maryland, College Park
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HR

Mid-level Data Scientist specializing in marketing analytics and scalable data platforms

Remote, USA5y exp
AdobeNortheastern University
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JK

Mid-level Data Engineer specializing in cloud data platforms and streaming pipelines

San Antonio, TX4y exp
USAAClark University
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SM

Mid-level Data Engineer specializing in cloud lakehouse and streaming pipelines

California, USA5y exp
JPMorgan ChaseCalifornia State University, Fullerton
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SA

Mid-level Data Engineer specializing in streaming and cloud lakehouse platforms

Dallas, TX4y exp
eBayUniversity of North Texas
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GN

Mid-level Data Engineer specializing in cloud-native ETL and data warehousing

Remote, USA4y exp
PayPalLamar University
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MK

Mid-level Data Analyst specializing in retention, churn, and customer analytics

Chicago, IL5y exp
OptumNorthern Illinois University

Analytics professional with experience across healthcare and fintech, including building SQL/Python data pipelines at Optum and owning a fraud detection initiative at Razorpay. Stands out for combining messy-data cleanup, reproducible analytics workflows, and stakeholder-driven metric design, with a reported 25% improvement in fraud detection while keeping false positives under control.

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DK

David Kidwell

Screened

Senior AI/ML Data Scientist specializing in NLP, computer vision, and MLOps

New York, NY10y exp
Canoe IntelligenceBinghamton University

Applied LLMs and a graph-RAG architecture in Neo4j to automate an accounting firm's cross-checking of transactional books against tax regulations, indexing 1,000+ pages into a knowledge graph with vector search. Combines agentic LLM workflows with classical NER (Hugging Face/NLTK) and validates using expert-labeled held-out data plus precision/recall and measured accountant time savings after deployment.

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HS

Senior Data Engineer specializing in multi-cloud data platforms and streaming pipelines

4y exp
Northern TrustUniversity of Texas at Arlington

Data platform engineer with hands-on ownership of high-volume financial data pipelines (millions of transactions/day) on Azure (ADF, Databricks, Delta Lake, Synapse), emphasizing schema-drift protection and automated data-quality gates. Also built resilient web scraping pipelines with anti-bot and backfill strategies, and shipped a versioned FastAPI + Redis data API with autoscaling, testing, and CI/CD via GitHub Actions.

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AK

Mid-level Software Engineer specializing in cloud-native microservices and real-time data pipelines

Boston, MA4y exp
CiscoNortheastern University
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NP

Mid-level Full-Stack Software Engineer specializing in cloud-native data platforms

Edwardsville, IL3y exp
UberUniversity of North Carolina at Charlotte
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JR

Mid-level AI/ML Engineer specializing in Generative AI, LLMs, and RAG for financial services

Hyattsville, MD4y exp
Morgan StanleyUniversity of Maryland, College Park
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GN

Mid-level Data Engineer specializing in cloud-native ETL and data warehousing

Remote, USA4y exp
PayPalLamar University
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MS

Senior AI/ML Engineer specializing in GenAI, MLOps, and healthcare analytics

Chicago, IL13y exp
WezomRice University
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PP

Senior Data Engineer specializing in Cloud Data Platforms and Generative AI

Brooklyn, NY11y exp
JPMorgan ChaseOsmania University
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AR

Adithya Rajendra

Screened ReferencesStrong rec.

Junior Data Engineer specializing in Azure data platforms and GenAI analytics

Bengaluru, India1y exp
ZEISSUC Irvine

Data/ML practitioner with experience spanning medical imaging (retinal vessel analysis for hypertension/CVD risk prediction) and enterprise data engineering at Carl Zeiss. Built large-scale SAP data cleaning/validation pipelines (10M+ daily records, ~99% accuracy) and RAG-based semantic search with LangChain/vector DBs that cut manual querying by 82%, plus automation that reduced data onboarding from 8 hours to 12 minutes.

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BK

Bharath kumar

Screened

Director-level AI & Data Science leader specializing in GenAI, LLMs, and MLOps

Draper, UT12y exp
ThorneBharathiar University

ML/NLP engineer currently working in NYC on a system that connects complex unstructured data sources to deliver personalized insights, using embeddings + vector DB retrieval and a RAG architecture (LangChain, Pinecone/OpenSearch). Strong focus on production constraints—especially low-latency retrieval—using FAISS/ANN, PCA, index partitioning, and Redis caching, plus PEFT fine-tuning (LoRA/QLoRA) and KPI/SLA-driven promotion to production.

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Jincheng Pang - Principal Data Scientist specializing in healthcare analytics and medical imaging AI in Sudbury, MA

Jincheng Pang

Screened

Principal Data Scientist specializing in healthcare analytics and medical imaging AI

Sudbury, MA11y exp
AccessHopeTufts University

Developed an LLM-driven recommendation agent in Azure Databricks to triage oncology patients and trigger second-opinion case creation using medical claims and EHR data. Uses ICD-10/CPT/J-code features in prompts, embeddings + vector DB similarity, and a backtesting framework emphasizing recall to avoid missing clinically relevant cases while supporting business revenue.

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SK

Sharath Kumar

Screened

Mid-level AI/ML Engineer specializing in LLM fine-tuning, RAG, and MLOps

Remote, USA5y exp
HPWilmington University

AI/ML engineer with HP experience building and productionizing an LLM-powered document intelligence platform (LangChain + Pinecone) to deliver semantic search and contextual Q&A across millions of enterprise support documents. Demonstrates strong MLOps and scaling expertise (Airflow, Kubernetes autoscaling, Triton GPU inference, monitoring with Prometheus/W&B) plus a structured approach to evaluation (A/B tests, shadow deployments, failover) and effective collaboration with non-technical stakeholders.

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HK

Harini Kv

Screened

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

Dallas, TX7y exp
EquinixFitchburg State University

GenAI/data engineering practitioner with production experience across Equinix, Optum, and Citibank—built an Azure OpenAI (GPT-4) + LangChain document intelligence platform processing 1.5M+ docs/month and a HIPAA-compliant Airflow healthcare pipeline handling 5M+ claims/day. Also delivered a real-time fraud detection + explainability system using LightGBM and a fine-tuned T5 NLG component, improving fraud accuracy by 15%+ while partnering closely with compliance stakeholders.

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Pooja Dokuri - Mid-level AI/ML Engineer specializing in GenAI, RAG pipelines, and cloud MLOps in Remote, USA

Pooja Dokuri

Screened

Mid-level AI/ML Engineer specializing in GenAI, RAG pipelines, and cloud MLOps

Remote, USA4y exp
UnitedHealth GroupEast Texas A&M University

Built and deployed a production LLM + vector search clinical decision support system at UnitedHealth Group, retrieving medical evidence and patient context in real time for prior authorization and risk scoring. Strong in end-to-end RAG architecture (Hugging Face embeddings, Pinecone/FAISS, SageMaker, Redis) plus orchestration (Airflow/Kubeflow) and rigorous evaluation/monitoring, with demonstrated ability to align solutions with clinical operations stakeholders.

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VM

Senior Data Scientist specializing in GenAI, LLMs and RAG

Dallas, TX5y exp
Texas InstrumentsTrine University

Built and deployed a production LLM-powered RAG assistant for semiconductor manufacturing failure analysis, reducing engineer triage effort by grounding outputs in retrieved evidence and gating responses with SPC + ML signals (LSTM anomaly scores, XGBoost probabilities). Experienced with LangChain/LangGraph to ship reliable, observable multi-step agents with branching/fallback logic, and evaluates impact using both technical metrics and business KPIs like mean time to triage and downtime reduction.

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ST

Sohan Thakur

Screened

Mid-level Software Engineer specializing in AI and full-stack healthcare platforms

6y exp
GE HealthCareSyracuse University

Built and deployed a RAG-based clinical knowledge assistant at GE Healthcare to help clinicians query large volumes of messy, unstructured clinical documents with grounded, cited answers. Hands-on across the full stack (OCR/ETL, de-identification for PHI, Azure OpenAI embeddings, Cosmos DB indexing, FastAPI/Django) with production monitoring via LangSmith and performance tuning through batching and index optimization.

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