Vetted Data Ingestion Professionals

Pre-screened and vetted.

Rayhaan Mohamed - Intern Software Engineer specializing in AI and full-stack development in Alpharetta, GA

Intern Software Engineer specializing in AI and full-stack development

Alpharetta, GA1y exp
CirrusLabsGeorgia Tech

Early-career software engineer with internship experience at CirrusLabs building a voice-enabled CRM workflow that integrated Google Text-to-Speech and GPT-based processing for automated deal creation. Stands out for a reliability-focused approach to AI integrations, including validation, structured logging, prompt refinement, and hardening asynchronous API/UI behavior in real-world application flows.

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MB

Mounya Bonuga

Screened

Mid-level AI/ML Engineer specializing in multimodal AI and recommendation systems

USA4y exp
Goldman SachsUniversity of Central Oklahoma

ML/AI engineer with hands-on ownership of a production LLM/RAG system at Goldman Sachs, focused on workflow automation and large-scale document search for operational teams. They combine strong MLOps and backend engineering skills with practical GenAI evaluation and safety practices, and cite measurable impact including 22% better task guidance accuracy and sub-second search across millions of records.

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JD

James Dinh

Screened

Junior Full-Stack Software Engineer specializing in AI and healthcare platforms

Remote2y exp
Prompt OpinionUC Berkeley

Built full-stack features for an AI healthcare copilot at Prompt Opinion, combining React/Next.js, Node/Express, PostgreSQL, and LLM/MCP integrations over FHIR-compliant patient data. Stands out for healthcare data interoperability knowledge, production ownership, and measurable impact, including scaling chatbot throughput and improving model response accuracy by 30% through better MCP tool architecture.

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LS

Mid-level Software Engineer specializing in cloud platforms, SRE, and ML-powered engineering tools

Austin, TX5y exp
IntelUniversity of Illinois Chicago

Platform-focused engineer/technical program leader working in silicon/wafer validation environments, with hands-on experience securing access to sensitive test results and engineering tooling. Has implemented RBAC/least-privilege controls with Azure Entra ID, Key Vault, PAM and integrated Checkmarx into dev workflows, while also deploying ML services on AKS using Bicep/Helm/Docker and Azure DevOps CI/CD with strong monitoring and incident response practices.

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ST

Mid-Level AI Engineer specializing in NLP, computer vision, and LLM applications

Austin, TX3y exp
BookedByUniversity of Maryland, Baltimore County

LLM/RAG practitioner who productionized an LLM-driven customer communication and transaction understanding system at PayPal, emphasizing privacy/compliance guardrails and large-scale data normalization. Experienced in real-time debugging of hallucinations via retrieval pipeline tuning and in leading hands-on developer workshops and sales-aligned POCs to drive adoption.

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PC

Pramod C

Screened

Mid-level Back-End Python Developer specializing in cloud-native microservices and FinTech

Boston, MA5y exp
State StreetBinghamton University

Backend engineer focused on building production-ready Python services (Flask/FastAPI) with strong performance and scalability instincts—Celery/Redis background processing, robust multi-tenant isolation (Postgres RLS), and pragmatic CI/Docker operations. Demonstrated measurable DB optimization impact (cut a critical analytics query from ~1–2s to ~100–150ms) and has hands-on experience integrating LLM/ML workflows (OpenAI, LangChain, embeddings, Redis/FAISS vector stores) without degrading API responsiveness.

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AB

Senior Software Engineer specializing in Cloud DevOps and AWS automation

Whippany, NJ8y exp
BarclaysNortheastern University

Backend/automation engineer who led the design of an OOP Python test automation framework for AWS infrastructure (Behave + Jenkins), cutting regression effort from weeks to a 3–4 hour run. Has hands-on cloud and DevOps experience across AWS (boto3, ECS, AMI automation via GitHub Actions) plus data/migration work including on-prem-to-cloud Oracle Retail DB migration with rollback planning and a Kafka + ML fraud-detection streaming pipeline.

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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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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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Hangquan Zhao - Senior Software Engineer specializing in connected vehicle platforms and real-time data systems in Mountain View, CA

Hangquan Zhao

Screened

Senior Software Engineer specializing in connected vehicle platforms and real-time data systems

Mountain View, CA4y exp
Toyota InfoTech LabsUC San Diego

Open-source maintainer of KafkaJSUI, a Vue.js-based Kafka browser UI, focused on making large-topic exploration fast and responsive. Delivered major performance wins (incremental fetching, virtualized lists, WebSocket streaming, backpressure, Web Worker offloading) cutting load times to sub-200ms, and also strengthened CI and developer documentation while handling community-reported issues end-to-end.

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Yukti Kamthan - Senior Software Engineer specializing in AI/ML and data systems in Mumbai, India

Yukti Kamthan

Screened

Senior Software Engineer specializing in AI/ML and data systems

Mumbai, India10y exp
JPMorgan ChaseFlorida International University

Built and shipped production LLM/AI agent systems including an NL-to-SQL query agent with semantic search and Redis-based caching, using schema-aware prompting and threshold validation to reduce hallucinations. Has orchestration experience running ML microservices on Kubernetes and automating event-driven insurance (P&C) workflows (claims/policy + fraud checks), reporting ~60% manual overhead reduction and ~99% uptime, with strong monitoring/drift-detection and business-facing Power BI reporting.

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Mason Acevedo - Mid-Level Software Engineer specializing in data pipelines, APIs, and ML in San Francisco, CA

Mason Acevedo

Screened

Mid-Level Software Engineer specializing in data pipelines, APIs, and ML

San Francisco, CA3y exp
DreamDAIHarvey Mudd College

Software engineer whose recent work includes co-designing and building a "Shared Profile" feature for a social event-planning app (Again, Sometime). Previously at Pure Storage, set up Docker-standardized Ubuntu/Python environments to simulate hardware testbeds and support workload/performance regression testing for other engineering teams; no robotics/ROS experience.

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Eduardo Diaz - Senior Full-Stack Software Engineer specializing in Python, FastAPI/Django, and Azure in Remote

Eduardo Diaz

Screened

Senior Full-Stack Software Engineer specializing in Python, FastAPI/Django, and Azure

Remote13y exp
SiemensUSC

Backend/data engineer with production experience building real-time IoT telemetry pipelines for wind/solar assets at Siemens (FastAPI on Azure Event Hubs/Service Bus, Cosmos DB + SQL Server) and deploying GPS/fleet telematics microservices on AWS ECS Fargate with Terraform and blue/green CI/CD. Demonstrated strong reliability and performance chops, including a 30s-to-<100ms SQL optimization and owning a Kafka pipeline incident resolved in ~20 minutes.

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Sanat Ahuja - Senior Engineering Manager specializing in platform, data/ML, and identity/access systems in Los Angeles, CA

Sanat Ahuja

Screened

Senior Engineering Manager specializing in platform, data/ML, and identity/access systems

Los Angeles, CA16y exp
GoodyearUSC

Senior engineering leader from Goodyear’s AndGo startup-like division who scaled the org from 12 to 30+ across pod-based teams and introduced an Architect Guild/ARD governance model. Led a 4-month Europe launch requiring AWS regional infrastructure, GDPR compliance, i18n/l10n, and new EMEA reporting pipelines, and has hands-on depth in API performance, incident response, and GraphQL/Hasura adoption to boost product velocity.

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Sushma Mangalampati - Mid-level Data Engineer specializing in lakehouse ETL and analytics engineering in Boston, MA

Mid-level Data Engineer specializing in lakehouse ETL and analytics engineering

Boston, MA6y exp
ServiceNowNortheastern University

Data engineer with strong end-to-end ownership of production lakehouse pipelines (Snowflake + Databricks + Airflow + dbt + Great Expectations), handling 8M+ records/month and 500K+ daily CDC updates. Delivered measurable reliability and efficiency gains (41% cost reduction, freshness improved from 4h to 30m, 35% fewer downstream incidents) and has experience building a lakehouse platform from scratch across 12 source systems.

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Zhiwen Zhao - Junior Data Engineer specializing in cloud ETL and big data platforms in New York, NY

Zhiwen Zhao

Screened

Junior Data Engineer specializing in cloud ETL and big data platforms

New York, NY3y exp
Bank of ChinaNYU

Data engineer focused on transit/transportation datasets, building Spark-based pipelines that ingest from Oracle/APIs, apply PySpark data-quality fixes, and publish star-schema fact tables to Azure Data Lake. Experienced troubleshooting complex Spark failures (using checkpointing to manage long lineage) and operating Airflow-driven backfills and GitLab CI deployments for production DAGs.

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JC

Jamie Cook

Screened

Senior Machine Learning Engineer specializing in AI search and recommendation systems

Plantation, FL8y exp
ChewyUniversity of Miami

Built internal production LLM tools for engineering and support, including a customer-health assistant and a RAG-based incident explainer grounded in logs, metrics, and deploy data. Stands out for combining strong GenAI safety/evaluation practices with pragmatic backend engineering, delivering measurable impact like a 40% drop in data-help requests and answers in seconds instead of minutes or hours.

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PP

Preeti Pandey

Screened

Senior AI/ML Engineer specializing in predictive analytics and NLP

Birmingham, AL10y exp
Blue Cross and Blue Shield of AlabamaLiverpool John Moores University

ML/AI engineer with hands-on experience building production healthcare AI systems across predictive modeling and GenAI. They built an end-to-end patient risk prediction platform and a RAG-based clinical summarization feature, combining strong NLP/LLM skills with AWS deployment, monitoring, drift detection, and reusable Python service design to deliver measurable clinical and operational impact.

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HM

Entry-level Data Scientist specializing in AML, fraud, and applied machine learning

Texas, USA1y exp
Charles SchwabUniversity of Texas at Dallas

Data/ML engineer with end-to-end ownership experience at Charles Schwab, spanning data ingestion, anomaly detection, data quality infrastructure, and dashboards used daily by compliance and business teams. Stands out for debugging complex cross-layer issues in systems processing 17M+ records per day and for turning one-off data quality checks into reusable frameworks that scaled across business units.

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HS

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

USA5y exp
CiscoUniversity of North Texas

ML/AI engineer with strong production depth across classical ML, MLOps, LLM/RAG, and scalable Python data platforms, with experience at Cisco and Accenture. Stands out for tying technical decisions to measurable business outcomes, including $1.2M annual savings, 40% faster support resolution, and broad internal adoption of shared engineering frameworks.

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SV

Mid-level AI/ML Engineer specializing in cybersecurity and fraud analytics

USA4y exp
AccentureUniversity of Massachusetts Lowell

AI/ML engineer with production experience across both classical ML and Generative AI, including a real-time banking fraud detection platform at Deloitte and a RAG-based cybersecurity threat analysis feature at Accenture. Stands out for owning systems end-to-end—from feature pipelines and model tuning through deployment, monitoring, retraining, and API/platform reliability—with measurable impact on fraud accuracy, false positives, and SOC analyst efficiency.

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SB

Junior Software Engineer specializing in backend systems and AI-powered platforms

Foster City, CA3y exp
ZooxSan Jose State University

Built production-scale dashboards and real-time data systems across fintech and autonomous driving, with hands-on ownership from React frontend architecture through Python/Kafka/Elasticsearch backend pipelines. At Zoox, led development of an automated safety signal attribution platform that replaced manual engineering calculations and surfaced trends through dashboards.

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VS

Mid Software Engineer specializing in cloud-native healthcare and security systems

California, USA4y exp
CiscoArizona State University

Frontend engineer with Oracle Cerner experience building healthcare operations UIs where accuracy, compliance, and workflow efficiency matter. They’ve owned a sophisticated React-based patient record validation and merge interface and also show solid performance instincts through render optimization, state management, and TypeScript-based API modeling.

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RK

Junior AI/ML Engineer specializing in LLM applications and full-stack systems

Champaign, IL2y exp
KohlerUniversity of Illinois Urbana-Champaign

AI/full-stack engineer with hands-on experience shipping LLM-powered operational workflows in claims and Medicaid contexts. They built end-to-end TypeScript/React/Node systems with RAG, structured outputs, evals, and human-in-the-loop controls, and can point to concrete impact including 45% lower triage time, 38% better retrieval accuracy, and major manual-effort reductions.

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