Vetted Semantic Search Professionals

Pre-screened and vetted.

JW

Senior Software Engineer specializing in AI platforms and FinTech

Astoria, NY12y exp
NotionGeorge Washington University
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MD

Mid-level Software Engineer specializing in backend, ML platforms, and FinTech

California, USA5y exp
MetaSaint Louis University
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MR

Senior AI Engineer specializing in LLM platforms and RAG systems

Bronx, NY8y exp
PerplexityFordham University
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CW

Mid-level Software Engineer specializing in Windows search and AI features

San Francisco, CA5y exp
MicrosoftUC San Diego
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YW

Senior AI Engineer specializing in LLM systems and scalable backend platforms

San Francisco, CA8y exp
UberUniversity of Michigan
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TC

Mid-level Software Engineer specializing in Python, distributed systems, and AI backend services

San Francisco, CA6y exp
OpenAIWebster University
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BW

Senior Machine Learning Engineer specializing in GenAI, NLP, and recommendation systems

Seattle, WA10y exp
eBayUniversity of Illinois Urbana-Champaign
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BS

Engineering Manager specializing in AI/ML platforms and 0→1 product delivery

Cambridge, MA15y exp
ElsevierHarvard University

Player-coach engineer/lead on a high-scale research integrity platform ("Lighthouse") that flags fraud/manipulation signals across ~3M academic manuscripts per year. Owns architecture decisions (ADRs), implements across Go/Java/React services, and introduced NLP (SciBERT embeddings + human-in-the-loop) to assess out-of-context citations while also handling production incidents with a data-consistency-first approach.

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Christopher Bun - Executive AI/ML technology leader specializing in healthcare, biotech, and legal AI in Irvine, CA

Executive AI/ML technology leader specializing in healthcare, biotech, and legal AI

Irvine, CA17y exp
Augnition LabsUniversity of Chicago

Repeat founder and startup advisor with experience spanning academic, health tech, legal tech, sports, and gaming. Has participated in fundraising and due diligence and has built companies, engineering teams, and software platforms from scratch, with a strong product-design-first approach to product-market fit and market selection.

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Arun Ganesh - Junior Software Engineer specializing in healthcare AI and cloud infrastructure in San Francisco, CA

Arun Ganesh

Screened

Junior Software Engineer specializing in healthcare AI and cloud infrastructure

San Francisco, CA3y exp
AmazonCal Poly San Luis Obispo

Amazon Health AI engineer who has owned both full-stack clinical product features and production LLM systems end to end. Built HIPAA-compliant GraphQL and agentic RAG architectures for provider workflows across 125,000+ patients, with measurable impact including 30% higher clinical relevance, 55% lower lookup time, and 12% less false medical information.

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KT

Kenil Tanna

Screened

Staff-level Machine Learning Engineer specializing in LLMs and MLOps for Financial Services

New York, NY7y exp
JPMorgan ChaseIIT Guwahati

Machine learning/NLP practitioner at J.P. Morgan who led development of a production RAG system and an entity resolution pipeline for complex financial data. Deep hands-on experience with embeddings (Sentence-BERT), vector search (FAISS/pgvector), LLM fine-tuning (LoRA/PEFT), and rigorous evaluation (human-in-the-loop + A/B testing) backed by strong MLOps on AWS (Docker/Kubernetes, MLflow, Prometheus/Datadog).

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Nishitha Thummala - Mid-level AI/ML Engineer specializing in LLMs, RAG, and scalable inference in San Francisco, CA

Mid-level AI/ML Engineer specializing in LLMs, RAG, and scalable inference

San Francisco, CA6y exp
PerplexityUniversity of Nebraska Omaha

Backend/retrieval-focused engineer with production experience at Perplexity building a large-scale real-time Q&A system using retrieval-augmented generation, emphasizing low-latency, high-quality answers through ranking, context optimization, and caching. Also has orchestration experience from both product-facing LLM pipelines and large-scale infrastructure workflows at Meta, and has partnered with non-technical stakeholders to align AI trade-offs with business goals.

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Cathy Shu - Entry-level Full-Stack Engineer specializing in AI and healthcare applications in Mountain View, CA

Cathy Shu

Screened

Entry-level Full-Stack Engineer specializing in AI and healthcare applications

Mountain View, CA1y exp
Carnegie Mellon UniversityCarnegie Mellon University

Early-career full-stack/AI engineer who has already owned a production RAG system for a mental-health-focused startup serving veterans and first responders. Stands out for combining LLM application design, AWS infrastructure work, and product thinking around trust, latency, and guardrails, plus building a separate agentic commerce support prototype and a stock backtesting platform.

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Krishna Reddy - Mid-level AI/ML Engineer specializing in fraud detection and clinical LLM assistants in New York, NY

Krishna Reddy

Screened

Mid-level AI/ML Engineer specializing in fraud detection and clinical LLM assistants

New York, NY6y exp
StripeIndiana Wesleyan University

Built and deployed a production clinical support LLM assistant at Mayo Clinic using a LangChain-orchestrated RAG architecture (Llama 2/PaLM) over de-identified clinical records, integrating BigQuery with Pinecone for semantic retrieval. Focused on healthcare-critical reliability by reducing hallucinations through grounding, implementing HIPAA-aligned privacy controls (Cloud DLP, VPC Service Controls), and running structured evaluations with clinician feedback.

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GL

Graham Lutz

Screened

Director of Engineering specializing in platform, AI, and cloud-native SaaS

Atlanta, GA10y exp
RulaGeorgia State University
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AR

Anagha Ram

Screened

Intern AI/ML Engineer specializing in NLP, LLMs, and semantic search

Los Altos, CA2y exp
Columbia UniversityCornell University

Built and deployed a production RAG-based semantic search and summarization system for large legal/technical document sets, owning the full backend (embeddings, vector store, chunking, prompting) and driving a reported 40–60% reduction in manual review time. Experienced with LangChain/LlamaIndex plus Airflow/Temporal-style orchestration, and applies rigorous evaluation/monitoring (A/B tests, drift detection, staged rollouts) to keep agentic systems reliable. Also partnered with a supply-chain manager at TE Connectivity to deliver an AI inventory recommendation tool projected to drive millions in value.

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Shilong Li - Intern Software Engineer specializing in backend and distributed systems in San Jose, CA

Shilong Li

Screened

Intern Software Engineer specializing in backend and distributed systems

San Jose, CA1y exp
ByteDanceUniversity of Illinois Urbana-Champaign

Backend engineer with experience at ByteDance (TikTok monetization) and Baidu, plus a personal real-time course booking/tracking platform built with FastAPI, Postgres, and Redis. Demonstrates strong concurrency and reliability engineering (Redis distributed locks with TTL extension, idempotent event processing) and practical DevOps skills (Kubernetes/Helm, GitLab CI/CD, Docker build-time optimization).

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GB

Senior AI/ML Engineer specializing in computer vision, NLP, and enterprise ML systems

Chicago, IL11y exp
Motorola SolutionsPrinceton University

ML/AI engineer with hands-on ownership of production computer vision and GenAI systems, spanning real-time public safety video analytics and RAG-based knowledge assistants. Stands out for translating research-oriented approaches into scalable, monitored production systems with clear business impact, including 50% latency reductions, 25% faster response times, and 40% lower document search time.

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YA

Mid-level Software Engineer specializing in full-stack and AI-enabled applications

USA4y exp
NVIDIAFlorida State University

Built and shipped an AI-powered resume analysis and job-matching product end to end across React, TypeScript, FastAPI, OpenAI, LangChain, and FAISS. Strong in practical LLM systems design, including RAG, structured outputs, evals, monitoring, and human-in-the-loop decision support, with a reported 35% improvement in recruiter-validated matching accuracy.

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MJ

Senior AI/ML Engineer specializing in Generative AI, NLP, and RAG systems

Mesquite, TX11y exp
AmazonUniversity of Texas at Dallas

ML/NLP engineer focused on production-grade data and search/recommendation systems: built an end-to-end pipeline that connects unstructured customer feedback with product data using TF-IDF/BERT, Spark, and AWS (SageMaker/S3), orchestrated with Airflow and monitored for drift. Also has hands-on experience with entity resolution at scale and improving search relevance via BERT embeddings, FAISS vector search, and domain fine-tuning validated with precision@k and A/B testing.

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