Vetted ETL Professionals

Pre-screened and vetted.

Pranav Chand - Senior AI/ML Engineer specializing in Generative AI and LLM platforms in ServiceNow, CA

Pranav Chand

Screened

Senior AI/ML Engineer specializing in Generative AI and LLM platforms

ServiceNow, CA5y exp
ServiceNowCalifornia State University, Fullerton

Backend engineer focused on multi-tenant enterprise AI personalization and recommendation platforms, combining ML/LLM intent extraction with deterministic policy guardrails for compliance and auditability. Has hands-on AWS experience (ECS/Lambda/DynamoDB/S3) and led a careful DynamoDB single-table migration using dual write/read, canary + feature-flag rollouts, and strong observability/security (JWT/OAuth2, RBAC, Postgres RLS).

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pavan kalyan padala - Mid-level Data Scientist specializing in predictive and generative AI in Daytona Beach, Florida

Mid-level Data Scientist specializing in predictive and generative AI

Daytona Beach, Florida4y exp
2725 Hospitality LLCYeshiva University

AI/ML engineer with production LLM experience in regulated financial services (J.P. Morgan Chase), building a customer response engine to automate first-contact resolution while addressing privacy, bias, compliance, and scale. Strong MLOps/orchestration background (Airflow, Docker/Kubernetes, AWS Step Functions, Azure ML/SageMaker) plus proven ability to integrate with legacy systems and drive stakeholder adoption through dashboards, auditability, and training.

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Sankalp Tiwari - Mid-Level Software Engineer specializing in backend microservices and FinTech data pipelines in New York, NY

Mid-Level Software Engineer specializing in backend microservices and FinTech data pipelines

New York, NY4y exp
Goldman SachsSan José State University

Backend engineer at Goldman Sachs who built LLM-powered reconciliation/reporting services and high-throughput Kafka pipelines (8M+ events/day). Strong in production-grade Python/FastAPI microservices on Kubernetes with GitOps-style CI/CD, plus experience migrating legacy reporting/settlement services onto an internal Kubernetes platform using shadow deployments and gradual cutovers.

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Akshit Modi - Mid-level AI/ML Engineer specializing in healthcare NLP and MLOps in Remote, USA

Akshit Modi

Screened

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

Remote, USA5y exp
TempusArizona State University

Healthcare/clinical ML practitioner who built and productionized ClinicalBERT-based pipelines to extract and standardize oncology EHR data, improving downstream model F1 from 0.81 to 0.92 while controlling training cost via LoRA/QLoRA. Experienced orchestrating real-time AWS ETL/ML workflows (Glue, Lambda, SageMaker) and partnering with clinicians using SHAP-based interpretability, contributing to an 18% reduction in readmissions and full adoption.

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Aditya Jaiswal - Intern Software Engineer specializing in cloud, DevOps, and applied AI in Carlsbad, CA

Intern Software Engineer specializing in cloud, DevOps, and applied AI

Carlsbad, CA1y exp
ViasatUSC

Full-stack engineer with startup ownership experience (Aiir) building 15+ TypeScript/Go microservice APIs on GCP Cloud Run with Kafka-based async event streaming and React CRM integrations for billing/analytics. Strong post-launch operator who tuned Oracle performance (partitioning/indexing/query optimization) and validated a 23% retrieval-time reduction via AWR, and has a quality/DevSecOps mindset (94% Pytest coverage, GitHub Actions, SonarQube, Twistlock, CloudWatch) including migrating 18+ production CI/CD pipelines.

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Suloni Praveen - Entry-Level Software Engineer specializing in data engineering and ML systems in Los Angeles, CA

Entry-Level Software Engineer specializing in data engineering and ML systems

Los Angeles, CA0y exp
Easley-Dunn ProductionsUSC

Built an end-to-end Next.js/TypeScript LLM-based scientific PDF analyzer using local Ollama/Llama inference to prioritize privacy and cost, producing structured research artifacts (e.g., authors/methods/findings) with ~92% extraction accuracy. At Qualtrics, helped replace a batch pipeline with a real-time, low-latency ML inference service (Python/Go on Kubernetes) using Redis caching, Grafana-based observability, and graceful fallbacks to protect UX during failures.

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BZ

Binghan Zhang

Screened

Intern Data Analyst specializing in business intelligence and financial analytics

San Francisco, CA1y exp
Innova AI TechUCLA

Analytics candidate with hands-on experience in both fraud and churn use cases, including SQL-based preparation of 6.5M transaction records and reproducible Python modeling workflows. Stands out for combining technical rigor in data quality, feature engineering, and imbalance handling with strong stakeholder alignment, metric definition, and dashboard adoption.

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PP

Prutha Patel

Screened

Mid-level Business Analyst specializing in healthcare and data analytics

Texas, USA3y exp
Blue Cross Blue ShieldUniversity of Texas at Arlington

Analytics candidate with hands-on experience at BCBS building HIPAA-compliant SQL/Snowflake/Tableau pipelines across fragmented legacy healthcare systems. Stands out for turning a 5-day claims reporting process into a near real-time 10-minute dashboard and for pairing strong data engineering discipline with reproducible Python-based churn modeling that drove measurable retention outcomes.

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AC

Mid-level Business Data Analyst specializing in healthcare analytics

USA6y exp
Johnson & JohnsonGovernors State University

Analytics-focused candidate with strong SQL, Excel, Python, and Tableau skills who supports payroll-, compensation-, and finance-adjacent processes through rigorous data validation and reconciliation. Stands out for uncovering a duplicate-record mapping issue that exposed roughly $250K in revenue leakage and for building repeatable controls, dashboards, and automated checks to improve reporting accuracy.

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DH

Daniel Huang

Screened

Junior Full-Stack Engineer specializing in lab software and internal tools

Sunnyvale, CA2y exp
LaborateLoyola University

Built Laborate.app, a full-stack lab notebook and inventory product for scientists, largely solo using Next.js App Router, TypeScript, Postgres, Prisma, and AWS S3. Stands out for combining product ownership with practical concerns like encrypted data storage, autosave reliability, caching, tenant isolation, and scalability planning.

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KS

Kristina Shen

Screened

Intern-level Data Scientist and ML Engineer specializing in analytics and AI systems

Long Island City, NY1y exp
DataLynnUniversity of Chicago

Early-career analytics candidate with hands-on experience in SQL/Python data pipelines, Tableau reporting, and marketing engagement analytics across internship and startup settings. Stands out for combining rigorous data quality practices with practical AI system design, including an end-to-end GPT-4 grading capstone that emphasized explainability and human oversight.

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YY

Yinghai Yu

Screened

Mid-level Data Engineer specializing in cloud data platforms and AI/ML pipelines

San Mateo, CA6y exp
Bubbles and BooksGeorgia Tech

Data-engineering-oriented candidate with hands-on experience building an agentic AI product and operational automation workflows. They described automating inventory-to-ERP discrepancy reconciliation with anomaly detection and daily reporting, and also have practical scraping/automation experience dealing with Cloudflare-protected sites using Selenium and Puppeteer.

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HL

Hao Liang

Screened

Mid-level Data Scientist specializing in GenAI, customer insights, and forecasting

Durham, NC5y exp
BASFUniversity of North Carolina at Chapel Hill

ML/AI practitioner with hands-on experience shipping production time-series forecasting and RAG-based customer insights platforms in an enterprise setting. At BASF, he improved seed sales forecasting beyond naive baselines using model selection tailored by brand size, and he also led a RAG solution over Salesforce reports, complaints, and surveys that reached 2,000+ users with strong daily engagement.

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MM

Executive technology leader specializing in model risk and regulatory technology

Waco, TX19y exp
Campton CorpPortland State University

Candidate is pursuing a CTO role and has helped multiple startups turn early technology concepts into concrete, real-world technical requirements. They cite a systems science and mathematics background, along with experience at JPMorgan Chase, and appear strongest in technical strategy, concept fleshing, and identifying strong people to help teams succeed.

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SP

Junior AI/ML Software Engineer specializing in LLMs and data-intensive systems

New York, NY3y exp
NYU Langone HealthNYU

AI/backend engineer who has owned production applied-ML systems end to end, including a Jitsi meeting intelligence platform with custom RoBERTa boundary detection, LLM summarization, and automated retraining from user feedback. Also has healthcare AI experience building a diabetes medication titration system with strict validation, drift monitoring, and safety guardrails—showing both product speed and high-stakes engineering rigor.

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RW

Junior Data Engineer and Analyst specializing in ETL, analytics, and e-commerce data

Walnut, CA3y exp
Dreamstream, LLCUC Irvine

Data engineer with a Master's in Data Science who has owned 30+ customer-facing K-12 SIS migrations end-to-end, building ETL, validation, and SOP-driven deployment processes in a PII-sensitive environment. Also brings recent hands-on agentic AI experience from a biotech capstone, where they led a production-oriented NLP-to-SQL + RAG support system that handled about 30% of support queries in testing.

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EM

Senior Project Manager and Business Analyst specializing in Oracle enterprise systems

Easton, PA16y exp
CrayolaPierre and Marie Curie University

Senior business analyst/project manager with broad enterprise implementation experience across multiple business functions and platforms, including ERP, custom web apps, AI chatbot deployment, and ITSM asset migration. Stands out for owning projects end-to-end, using iterative requirements workshops and visual process mapping, and finding practical configuration workarounds when out-of-the-box systems fall short.

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DC

Deep Chokshi

Screened

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

New York Metropolitan Area, USA5y exp
Goldman SachsStevens Institute of Technology

Full-stack engineer with enterprise banking experience at Citi and hands-on production AI agent work, including a multi-agent incident analysis pipeline using LangGraph, RAG, and LangSmith. Also built a zero-to-one healthcare operations dashboard spanning hospital workflows and AI-assisted clinical features, suggesting a blend of strong systems engineering and product-minded execution.

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AS

Arjun Sharma

Screened

Staff Data Scientist specializing in AI/ML engineering and MLOps

Austin, TX10y exp
AccentureTexas State University

ML/NLP engineer with experience at Flatiron Health building a production NLP platform that processed millions of clinical notes, using BERT/BiLSTM-CRF and spaCy to extract and normalize entities from noisy EMR text with oncologist-in-the-loop validation. Also built scalable retail ML workflows (Spark + Kubernetes + feature store caching) and applied vector databases plus contrastive-learning fine-tuning to improve retrieval relevance and recommendations.

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AB

Anuj Bubna

Screened

Senior DevOps/SRE Engineer specializing in cloud automation, reliability, and data pipelines

10y exp
IntuitUniversity of Texas at Dallas

Hands-on technical professional experienced in taking LLM/AI-adjacent integrations from prototype to production, using customer observation to refine UX and uncover edge cases. Diagnoses workflow issues in real time using logs and Sankey-style workflow analysis, and communicates fixes with clear short/long-term plans plus proactive alerting. Also partners cross-functionally to drive adoption and cost savings, including a POC around IBM Sterling Integrator that reduced licensing costs by $30K/year.

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AD

Junior Full-Stack Software Engineer specializing in AI data systems

New York, NY1y exp
SEPAL AINYU

Full-stack engineer with strong DevOps/AWS production experience who builds and operates multi-agent AI systems end-to-end (Streamlit/Python through Docker/Kubernetes and ECS/Fargate). Has delivered measurable outcomes: sub-2s latency and ~92% routing accuracy for an AI wellness assistant, shipped an AI-for-BI prototype in under 6 weeks cutting analysis time ~40%, and improved pipeline iteration speed ~35% via modularization and CI/regression checks.

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BA

Executive Engineering Leader specializing in AI, SaaS, and Data Platforms

28y exp
Mosaic LearningUniversity of Utah

Technology executive (VP/SVP Engineering, CTO/co-founder) with ~17 years of roadmap execution and the last 7 in senior exec roles. Notably led an AI-first strategic pivot when generative AI emerged—creating the AI product strategy, reskilling teams, and shipping initial AI features—while also scaling engineering orgs using SPACE metrics and driving major architecture decisions (custom reporting with React + Redshift) to close competitive gaps.

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RS

Ryan Sojan

Screened

Junior Software Engineer specializing in backend, data pipelines, and automation

Boston, MA1y exp
Khoury College of Computer SciencesNortheastern University

Software engineer with hands-on experience building a distributed ticketing system on AWS (Terraform, Go, MySQL) focused on high-concurrency reliability (locks/queues to prevent duplicate ticket confirmations) and load-tested performance. Also independently owned and shipped an Airflow automation script to stop/restart workflows during deployments with email notifications, reducing manual operational effort.

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AD

Arnold Durazo

Screened

Senior Full-Stack Engineer specializing in AI/LLM and cloud-native SaaS

Austin, TX9y exp
OracleCal Poly Pomona

Software engineer with strong end-to-end ownership across frontend, backend, data, and infrastructure, including real-time systems (Kafka/Postgres) and observability (Datadog). Built and productionized an AI-native RAG support assistant (OpenAI embeddings + Pinecone) with prompt/guardrail design, achieving 48% agent adoption and 30% faster responses. Experienced in legacy modernization and reliability work using feature flags, event/transaction replay, and rapid embedded delivery.

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