Vetted Semantic Search Professionals

Pre-screened and vetted.

PB

Mid-level Data Scientist specializing in ML, NLP, and cloud data pipelines

USA4y exp
KrogerNJIT
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DM

Senior Software Engineer specializing in full-stack web apps and LLM/RAG systems

Raleigh, NC6y exp
OpenPRA OrgNorth Carolina State University
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GS

Mid-level Software Engineer specializing in AI and cloud data platforms

Remote, USA4y exp
George Mason UniversityGeorge Mason University
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GG

Mid-level Business Intelligence Engineer specializing in AI-powered analytics

New York, NY3y exp
LTIMindtreeWright State University
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TS

Mid-level AI/ML Engineer specializing in generative AI and cloud ML platforms

Remote4y exp
HCA HealthcareUniversity of Memphis
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SV

Mid-level Software Engineer specializing in full-stack, cloud, and AI systems

Bloomington, IN4y exp
Indiana UniversityIndiana University
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NP

Junior Full-Stack Software Engineer specializing in applied AI/LLM systems

USA2y exp
IBM
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RZ

Rui Zhao

Screened ReferencesStrong rec.

Junior Machine Learning Engineer specializing in semantic search and retrieval systems

Los Angeles, CA1y exp
University of Southern CaliforniaUSC

Built and shipped a production RAG system (“TROJAN KNOWLEDGE”) for answering questions over technical PDFs, using a 3-stage retrieval stack (BM25 + FAISS + cross-encoder) to lift F1 from 71% to 84%. Drove major performance gains with a 3-level cache (memory/Redis/disk) cutting latency from ~200ms to ~10ms, and added Prometheus/Grafana monitoring plus LangChain-based fallback logic to handle OpenAI rate limits under load.

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Sudheer koki - Mid-level AI/ML Engineer specializing in predictive modeling, data pipelines, and RAG systems in Florida, USA

Sudheer koki

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in predictive modeling, data pipelines, and RAG systems

Florida, USA5y exp
MetLifeCumberland University

Built and productionized an LLM-powered internal knowledge search system in a regulated environment, using embeddings/vector DB retrieval with strict grounding and confidence gating to reduce hallucinations. Reported ~45% accuracy improvement over keyword search and implemented end-to-end orchestration, monitoring, CI/CD, and incremental re-indexing to manage latency and data freshness while driving adoption with business stakeholders.

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JV

Jon Vogel

Screened ReferencesStrong rec.

Executive software engineer specializing in iOS, AI, and edge computer vision

Redmond, WA11y exp
Nomad GoUniversity of Washington

Built a production AI-native internal onboarding feature that reduced manual product setup effort by combining barcode API data, product photos, structured LLM outputs, and a polished real-time camera UI. Demonstrates hands-on experience across the full stack of LLM systems: prompt/schema design, multimodal inputs, backend orchestration with SQS and vector retrieval, and production reliability through evals, telemetry, and drift monitoring.

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VK

Vikas Katuru

Screened ReferencesStrong rec.

Junior Full-Stack AI Engineer specializing in GenAI and secure data systems

2y exp
Community Dreams FoundationUniversity at Buffalo

Backend-leaning full-stack engineer who has built AI-powered analytics products from 0→1, including a predictive analytics dashboard and an AI orchestrator for natural-language-to-database querying. Particularly strong in making LLM systems production-safe through schema validation, self-healing retries, monitoring, and retrieval optimization, with quantified impact on cost, latency, and quality.

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AI

Aditya illur

Screened

Mid-level Platform/SRE Engineer specializing in Kubernetes and multi-cloud automation

Northbrook, IL3y exp
Medline IndustriesNortheastern University

Infrastructure security/DevSecOps engineer who led security and automation patterns during a large Azure migration (30+ legacy apps, wave-based execution), enforcing zero-trust controls by baking CrowdStrike/Illumio into golden images and adding CI/CD security gates. Experienced integrating GitLab runners and Terraform agents as containerized services with strong secrets management (Azure Key Vault) and disciplined image/versioning practices, and has hands-on troubleshooting of ACI runtime constraints under load.

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Rajasekhar Tungala - Mid-level Full-Stack Developer specializing in cloud-native microservices and AI/ML integration in New York, United States

Mid-level Full-Stack Developer specializing in cloud-native microservices and AI/ML integration

New York, United States4y exp
CVS HealthStevens Institute of Technology
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Sri Maniteja Chinnam - Mid-Level Full-Stack Engineer specializing in Next.js/TypeScript and AI search in United States

Mid-Level Full-Stack Engineer specializing in Next.js/TypeScript and AI search

United States3y exp
GoodyearUniversity at Buffalo
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JK

Mid-level Java Full-Stack Developer specializing in cloud microservices and AI integration

Naperville, IL6y exp
EgenWichita State University
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NV

Mid-Level Full-Stack Software Engineer specializing in Java/Spring, React, and AWS

Boston, MA4y exp
M&T BankNortheastern University
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AS

Senior Software Developer specializing in SaaS, AWS, and API-driven platforms

Remote9y exp
Omen TechnologiesNortheastern University
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RG

Senior AI/ML Engineer specializing in Generative AI and agentic systems

Atlanta, GA8y exp
AUConnects LLCWichita State University
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SS

Mid-level AI/ML Engineer specializing in financial risk, fraud detection, and NLP

St Louis, MO4y exp
State StreetSaint Louis University
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SS

Senior GenAI Engineer specializing in LLM agents and insurance automation

West Bend, WI5y exp
CoforgeTexas A&M University
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NP

Nency Patel

Screened ReferencesModerate rec.

Intern Backend Software Engineer specializing in AI and distributed systems

California, USA1y exp
BravenRutgers University

Built and owned an enterprise AI document-processing deployment at an automotive tech startup, taking it from discovery to stabilization. Strong in production LLM/RAG systems and backend reliability, with measurable impact including 8,000+ documents processed monthly and turnaround time reduced from nearly 24 hours to about 3 hours.

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KK

Kajol Khatri

Screened

Senior Software Engineer specializing in backend, DevOps, and LLM-powered systems

San Jose, CA5y exp
CBREUniversity of Texas at Arlington

Backend-focused Python engineer who has owned production FastAPI services deployed on Kubernetes, including CI/CD (GitLab CI to ECR) and GitOps delivery via ArgoCD/Helm. Has hands-on experience with complex reliability and infrastructure work—solving data inconsistency with validation/partial-data paths, fixing K8s liveness issues via lazy loading, and supporting a phased cloud-to-on-prem migration with dual-writes and monitoring. Also built Kafka-based real-time ingestion consumers handling bursty, high-throughput traffic with async processing and topic/retention tuning.

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