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Vetted Data Analysis Professionals

Pre-screened and vetted.

SK

Intern-level Software Engineer specializing in Machine Learning and Full-Stack Web Development

Houston, TX1y exp
SCB XRice University
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EO

Senior Software Engineer specializing in distributed systems and cloud infrastructure

U.S.A., U.S.A.12y exp
ElasticUniversity of Georgia
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KN

Junior Software Engineer specializing in full-stack development and computer vision

Remote1y exp
EinNel TechnologiesUniversity of Michigan
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UP

Mid-level Data Scientist specializing in ML, NLP, and LLM applications

Phoenix, AZ4y exp
Judicial Branch of ArizonaNortheastern University
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JH

Senior Product & UX/UI Designer specializing in design systems and data-driven digital experiences

8y exp
Johnson & JohnsonDrexel University
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SR

Senior AI/ML Engineer specializing in Generative AI and Computer Vision

Los Angeles, California9y exp
PoplTsinghua University
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BT

Mid-level Software Engineer specializing in AI, data engineering, and cloud systems

San Francisco Bay Area, CA3y exp
SalesforceUniversity at Buffalo
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GL

Senior QA Engineer specializing in automation, data quality, and cross-platform testing

San Diego, CA21y exp
San Diego State UniversitySan Diego State University
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GM

Mid-level AI/ML Product & Solutions Specialist specializing in GenAI and MLOps

Remote, U.S5y exp
ExtensisHRCarnegie Mellon University
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NJ

Senior Strategy & Operations leader specializing in healthcare and pharmacy growth

New York, NY8y exp
Shields Health SolutionsIndiana University Kelley School of Business
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RB

Mid-level Sales Development Representative specializing in SaaS, e-commerce, and pipeline generation

Los Angeles, CA5y exp
StripeSanta Monica College
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CJ

Clidner Joseph

Screened ReferencesStrong rec.

Senior Talent Acquisition & Recruiting Operations Partner specializing in hiring analytics

New York, NY6y exp
Omnicom Media GroupBaruch College

Recruiting leader in the agency/media space (Omnicom/Hearts & Science and WPP Media) who manages a small recruiter pod and builds operational systems to improve hiring outcomes. Known for process standardization and change management (Greenhouse templates, SLAs, automation) and for measurable stakeholder impact—e.g., cutting hiring manager response lag to 48 hours and partnering with a CFO to prioritize/stagger hiring based on capacity and budget.

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HD

Harbir Dhillon

Screened ReferencesModerate rec.

Mid-level Software Engineer specializing in distributed systems and cloud-based full-stack development

Stockton, CA3y exp
California Health Care FacilityVanderbilt University

Software engineering candidate who built a compiler-like Python tool to translate between Python code and UML-style diagrams (and back). Also has hands-on AWS experience building a distributed pub/sub system using services like Lambda, API Gateway, ELB, WAF, VPC, and DynamoDB, plus ML projects using Kaggle datasets (e.g., diabetes risk analysis).

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NC

Mid-level Supply Chain Planner/Buyer specializing in sourcing, MRP, and analytics

Boston, MA4y exp
ASMPTNortheastern University

Supply chain/sourcing professional focused on semiconductor tooling NPI ramp-ups, owning vendor selection through production and delivery. Demonstrates strong cost and trade-risk mitigation (e.g., avoided 25% Section 301 tariff via HTS/landed-cost analysis) and measurable supplier performance turnarounds (OTD improved to 95%) using SAP MRP, shortage analysis, and structured supplier governance.

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CC

Caden Cheah

Screened

Intern Full-Stack/ML Engineer specializing in LLM applications and mobile development

Los Angeles, CA1y exp
IlloominateUC Berkeley

Backend engineer who built a serverless AWS Lambda microservices backend for a parenting assistance mobile app, including a personalized recommendation system optimized to sub-500ms via precomputed scoring and DynamoDB caching. Demonstrates strong production pragmatism: CloudWatch-driven performance tuning (provisioned concurrency), zero-downtime phased schema migrations, and robustness patterns like optimistic locking and request deduplication. Also led a refactor of an LLM RAG pipeline to improve retrieval quality and cut latency from ~5s to ~3s.

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AR

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

Remote, USA3y exp
PayPalUniversity of Central Missouri

LLM/agentic-systems engineer with PayPal experience hardening an LLM-powered fraud support assistant from prototype to production, focusing on low-latency distributed architecture, rigorous evaluation/testing, and security/compliance. Comfortable in customer-facing and GTM contexts—runs technical demos/workshops, builds tailored pilots, and aligns sales/CS with engineering to close deals and drive adoption.

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HT

Hassam Tariq

Screened

Mid-Level Software Engineer specializing in Cloud, GenAI, and Federal systems

Arlington, VA
DeloitteUniversity of Maryland, College Park

Cloud-focused engineer experienced deploying and stabilizing complex production systems that span APIs, infrastructure, and automated workflows, with a strong observability and safe-release mindset (feature flags/canaries/rollbacks). Has hands-on, customer-facing incident leadership, including executing DR regional failover during an AWS us-east-1 outage to maintain service and reportedly save a client ~$10M.

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OD

Orin Davis

Screened

Executive HR & Talent Consultant specializing in culture, DEI, and hiring science

New York, NY16y exp
illuceoClaremont Graduate University

Org/people advisor with 20+ years applying systems thinking and data-driven methods to high-stakes change—spanning DEI transformations at an international consulting firm, profitability turnarounds in eldercare via company-wide facilitation, and executive coaching. Also designs compensation benchmarks for novel roles at international tech companies, enabling successful global hiring and growth.

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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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JP

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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RW

Principal Data Scientist specializing in NLP and Generative AI

Chicago, IL9y exp
Witmer Consulting CorporationGeorgetown University

ML/NLP practitioner with experience building an embedding-based ad matching and search system at Vericast (BERT embeddings + similarity search) to replace a third-party taxonomy approach, evaluated via a human-curated gold standard. Also built a custom NER pipeline at Allstate for auto accident claims calls using a bidirectional LSTM and achieved 90%+ F1, with a strong emphasis on production-grade ML workflows (testing, CI/CD, orchestration, versioning, validation).

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KM

Kelsey Means

Screened

Mid-level Marketing Manager specializing in marketing operations, paid media, and full-funnel growth

West Palm Beach, FL5y exp
MicrosoftFlorida Atlantic University

Paid media performance marketer with hands-on ownership of $100K+/month Meta Ads spend for a luxury jewelry brand, using creative-first testing and funnel-building tactics (e.g., giveaways) to expand retargeting pools and drive attributed sales. Also experienced structuring full-funnel systems across Meta/TikTok/Google and diagnosing Performance Max declines by refining audience signals and bidding to improve lead quality and CPL.

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RC

Senior AI Product Manager specializing in ML, automation, and generative AI

Auckland, New Zealand7y exp
Crimson EducationColumbia University

AI Product Manager who also operates as a product marketer/CRM lifecycle lead, focused on behavior-driven onboarding and retention. Has delivered measurable growth through segmentation, multi-channel lifecycle programs, and experimentation (e.g., activation +23%, TTFV -30%, retention +14%), and led a cross-functional chatbot integration that improved course completion (+23%) while reducing refunds (-15%).

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SL

Samuel Luther

Screened

Senior Software Engineer specializing in full-stack systems, data pipelines, and ML

Seattle, WA8y exp
ExponentGeorgia Tech

Built and productionized an autonomous research agent (AutoGPT) in a Docker/Kubernetes environment with Pinecone-based long-term memory and custom Python tools for analysis, visualization, and report drafting. Implemented layered guardrails (prompt templates, automated validation, self-critique loops, and monitoring) and achieved ~25% reduction in manual report generation time while scaling the workflow to support multiple concurrent users.

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