Vetted Predictive Analytics Professionals

Pre-screened and vetted.

Albert Ghunney - Executive engineering leader specializing in FinTech, payments, and cloud platforms in Raleigh, NC

Executive engineering leader specializing in FinTech, payments, and cloud platforms

Raleigh, NC16y exp
Juze TechnologiesDrexel University
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SK

Mid-level Full-Stack Developer specializing in Python, React, and cloud-native AI microservices

San Francisco, CA6y exp
ShopifySaint Louis University
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MH

Senior Full-Stack Software Engineer specializing in cloud-native microservices and FinTech systems

Philadelphia, PA14y exp
CognizantCalifornia Lutheran University
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SK

Mid-level Data Scientist specializing in ML, MLOps, and forecasting for FinTech and AI hardware

Lake Forest, CA6y exp
AMDClark University
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JJ

Mid-level Business Analyst specializing in financial services and enterprise IT

4y exp
Morgan StanleyIndiana Tech
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PC

Intern AI/Data Science Engineer specializing in LLM agents, data engineering, and predictive analytics

Overland Park, Kansas1y exp
Novel CapitalUSC
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AG

Staff Software Engineer/Manager specializing in Generative AI and enterprise platforms

Santa Clara, CA12y exp
QualcommUniversity of Missouri-Kansas City
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ES

Senior Machine Learning Engineer specializing in Generative AI and NLP

New York, NY10y exp
HumaUSC
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RC

Senior Full-Stack Software Engineer specializing in cloud-native platforms and gaming systems

El Monte, CA11y exp
SeamgenUC Irvine
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SP

Mid-level AI/ML Engineer specializing in NLP, MLOps, and financial risk & fraud analytics

USA4y exp
JPMorgan ChaseFlorida International 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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DP

Junior Data Analyst specializing in finance, supply chain, and GTM analytics

New York, NY2y exp
Authentic Brands GroupNYU
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VG

Senior AI/ML Engineer specializing in NLP, LLMs, and MLOps

San Jose, CA8y exp
DatabricksAria University
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AP

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

5y exp
Northern TrustGrand Valley State University
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AA

Senior AI/ML Engineer specializing in LLMs and enterprise conversational AI

Northbrook, IL16y exp
CVS HealthUniversity of Illinois Chicago
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JS

Johnnie Sanders

Screened ReferencesModerate rec.

Executive AI Architect specializing in enterprise cloud and FinTech solutions

Lewisville, TX15y exp
11-11 Solutions Ent.Purdue University

Candidate brings an operator-to-founder profile with leadership experience in IT and Business Systems and a strong grasp of how ideas become venture-backable products. They speak fluently about startup evaluation criteria such as TAM, technical defensibility, speed to scale, and AI differentiation, and appear especially motivated by building solutions end-to-end in startup or venture studio environments.

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KS

Kshitij Singh

Screened ReferencesModerate rec.

Intern Software Developer specializing in healthcare data and systems analysis

Telangana, India0y exp
Apollo HospitalsIIT Jodhpur

Candidate comes from SaaS and healthcare analytics rather than game development, but has strong end-to-end ownership experience building real-time, high-availability systems in Python/AWS. They highlight measurable impact across performance, throughput, uptime, and cost reduction, including queue optimization and predictive ICU utilization pipelines, and are looking to transfer that systems engineering foundation into Unity/gameplay work.

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NK

NEHA KOLAN

Screened

Mid-Level Software Engineer specializing in microservices and cloud data pipelines

Texas, USA4y exp
CignaUniversity of North Texas

Full-stack engineer with end-to-end ownership across React/TypeScript frontends, Spring Boot/Node microservices, and production ops on Docker/Kubernetes and AWS (ECS/CloudWatch). Built real-time healthcare eligibility and analytics systems at Cigna and an early-stage seller onboarding platform at Flipkart, driving measurable performance gains (35–40% latency/throughput improvements) through event-driven Kafka pipelines, Redis caching, and strong reliability/observability practices.

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SK

Mid-level Data Scientist / AI-ML Engineer specializing in Generative AI and LLM applications

Dallas, TX5y exp
Baylor Scott & WhiteUniversity of North Texas

Built a production GenAI-powered analytics assistant to reduce reliance on data analysts by enabling natural-language Q&A over Databricks/Power BI dashboards, backed by vector search (Pinecone/Milvus) and a Neo4j knowledge graph, including multimodal support via OpenAI Vision. Demonstrates strong real-world LLM reliability engineering with strict RAG, LangGraph multi-step verification, and Guardrails/custom validators, plus broad orchestration and production monitoring experience (Airflow, ADF, Step Functions, Kubernetes, Prometheus/CloudWatch).

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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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TK

Mid-level AI/ML Engineer specializing in Generative AI, RAG, and Conversational AI

3y exp
AetnaIndiana Tech

Built a production RAG-based GenAI copilot backend at Aetna using Python/FastAPI, GPT-4, LangChain, and Azure AI Search, deployed on AKS with Prometheus/Grafana observability. Owned the system end-to-end (ingestion through deployment) and improved peak-time reliability by addressing vector search and embedding bottlenecks with Redis caching, index optimization, and async processing, plus added anti-hallucination guardrails via retrieval confidence thresholds.

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DB

Mid-level AI/ML Engineer specializing in LLMs, RAG, and MLOps on AWS

TX, USA5y exp
BlackRockTexas A&M University-Kingsville

AI engineer who built a production RAG-based internal analyst tool at BlackRock, fine-tuning an LLM on proprietary financial data and adding four layers of guardrails (input/retrieval/generation/output) to improve grounding and reduce hallucinations. Implemented a LangChain-based multi-agent orchestration (7 major agents) deployed on AWS ECS, with reliability measured via internal human evaluation, LLM-as-judge, and RLHF/drift monitoring.

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