Vetted Retrieval-Augmented Generation Professionals

Pre-screened and vetted.

SK

Mid-level Software Engineer specializing in backend systems, data pipelines, and AI/RAG

3y exp
Whys AIUniversity of South Florida
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KM

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

Plano, United States4y exp
NexilloWilmington University
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AP

Mid-level Full-Stack Developer specializing in React, Node.js, and AI automation

Toronto, Canada4y exp
AART ConsultingLoyalist College
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ST

Junior Generative AI Engineer specializing in LLM systems and RAG

Birmingham, Alabama2y exp
University of Alabama at BirminghamUniversity of Alabama at Birmingham
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RR

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

Dallas, USA4y exp
DoubleneUniversity of North Texas
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OS

Mid-level Software Engineer specializing in Python automation and GenAI on AWS

Dublin, OH4y exp
Columbus Technology SolutionsUniversity of Texas at Arlington
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PK

Junior Machine Learning Engineer specializing in Generative AI and LLM agents

San Jose, CA1y exp
GuardiumAIUniversity of Texas at Arlington
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RP

Mid-level AI/ML Research Engineer specializing in NLP, LLM agents, and multimodal systems

Chicago, IL4y exp
DePaul UniversityDePaul University
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KC

Mid-Level Full-Stack Software Engineer specializing in AI automation and RAG agents

4y exp
BugraPlanSan Francisco State University
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LC

Mid-level AI/ML Engineer specializing in GenAI, agentic AI, and RAG pipelines

USA4y exp
DoubleneIndiana Wesleyan University
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HI

Haeshitha Indukuri

Screened ReferencesStrong rec.

Entry AI/ML Engineer specializing in Generative AI, LLMs, and MLOps

Denton, TX1y exp
University of North TexasUniversity of North Texas

Built and productionized a MediCloud/Medicoud LLM microservice platform that lets clinicians query medical data in natural language, orchestrating multi-step RAG-style workflows with LangChain and evaluating/debugging with LangSmith. Delivered measurable gains (consistency ~70%→90% / +20%; latency ~2.0s→1.1s / -40%) by implementing structured prompts, fallback logic across multiple LLMs, hybrid retrieval tuning, and AWS Lambda performance optimizations (package size, async, caching).

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JK

Jeevan Kumar

Screened

Mid-level Full-Stack AI Engineer specializing in LLM systems and RAG

Remote, USA5y exp
Augmented AIUniversity of Massachusetts Dartmouth

Built and shipped a production "Campaign AI" multi-agent system (LangGraph) that personalizes B2B outbound emails at scale using Apollo.io prospect data, clustering-based segmentation, and 21 persona variants. Notably uncovered that high click rates were largely email security scanners and created a validated bot-detection/scoring pipeline (timestamps/IP/user-agent/click patterns), bringing reported engagement down from ~40% to a trusted 5–8% that aligned with real conversions.

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Harshit Vashisth - Junior AI Engineer specializing in LLMs, RAG systems, and MLOps in Remote, United States

Junior AI Engineer specializing in LLMs, RAG systems, and MLOps

Remote, United States1y exp
Concept2ActionJaypee Institute of Information Technology

Robotics software engineer who built an end-to-end system ("justmatrix"), focusing on multi-agent orchestration and a multi-RAG retrieval backend/API. Has hands-on ROS experience, including a custom node for reliable high-frequency sensor data routing, plus deployment automation using Docker, Kubernetes, and CI/CD.

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MR

Mid-level AI/ML Engineer specializing in NLP, GenAI, and conversational AI

Indianapolis, IN4y exp
Indiana University IndianapolisIndiana University Indianapolis

Built and deployed a production bilingual (Bengali/English) AI virtual assistant that replaced IVR for telecom customer service at massive scale (~15M users), integrating ASR/TTS, Rasa dialogue management, and custom NLP. Overcame low-resource Bengali data and noisy call-center audio with synthetic data augmentation and transformer fine-tuning, achieving significant production gains including ~50% reduction in support calls.

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HR

Hasin Rahman

Screened

Entry-level AI Engineer specializing in agentic LLM systems

Tampa, FL0y exp
University of South FloridaUniversity of South Florida

Recent graduate who independently built scholar.ai from scratch in roughly two weeks, shipping a full multimodal ingestion, retrieval, and grounded Q&A system for students. Also created Anchor SDK, an open-source framework for runtime hallucination detection and recovery, showing unusually strong depth in production LLM systems, evals, and reliability for an early-career candidate.

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SB

Sujal Bais

Screened

Junior AI/ML Engineer specializing in applied machine learning and data pipelines

New Jersey, USA1y exp
NuFinTech AIMahakal Institute of Technology

Built and deployed an LLM-powered automation pipeline that ingests voice and documents, transcribes/extracts key information into structured data, and routes it through backend workflows using Python/FastAPI. Uses n8n to orchestrate multi-step AI processes with validation, retries, and monitoring, and iterates with stakeholders via rapid demos to refine changing requirements.

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Muhammad Midhat - Senior Full-Stack/Backend Engineer specializing in APIs, distributed systems, and AI integrations

Senior Full-Stack/Backend Engineer specializing in APIs, distributed systems, and AI integrations

9y exp
Inoviks Soft SolutionsUniversiti Malaysia Pahang Al-Sultan Abdullah

AI/backend engineer who has built and scaled production LLM-powered SaaS features (document assistant + compliance review agent) on a Node.js/TypeScript + Postgres/Redis stack deployed to GCP Kubernetes. Demonstrates strong production reliability chops—async queueing, autoscaling, observability, and database tuning—with quantified wins (p95 latency -60%, query 4s to <200ms) and robust AI guardrails (strict RAG, schema validation, citations, HITL).

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Sarang Pratham - Junior Software Engineer specializing in data engineering and GenAI in Kundapur, India

Junior Software Engineer specializing in data engineering and GenAI

Kundapur, India3y exp
Abilitystack IncMoodlakatte Institute of Technology

Built and deployed a production LLM-powered recruitment chatbot that automates key recruiting steps (sourcing, candidate engagement, screening). Strong in agent orchestration with LangGraph, including guided graph-based workflows, context-aware routing, and reliability measures like clarifying steps plus human-in-the-loop evaluation.

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Rasheed Samady - Entry-level AI Engineer specializing in automation and ML platforms in San Francisco, CA

Entry-level AI Engineer specializing in automation and ML platforms

San Francisco, CA0y exp
NeymaCalifornia State University, East Bay

Built a production Python lead intelligence pipeline that combined external APIs, website crawling, and automated opportunity brief generation, with strong emphasis on reliability, observability, and recovery. Also has hands-on Playwright experience hardening flaky, dynamic web automations and reducing intermittent failures to under 5% through logging, screenshots, session management, and retry strategies.

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AR

Intern AI/ML & Data Engineer specializing in deep learning, NLP, and cloud data pipelines

USA1y exp
TechMentee, Inc.Pittsburg State University

AI/ML practitioner with production experience building a RAG-powered contextual customer support agent, optimizing for low latency using vector databases and smaller LLMs. Also deployed a fraud detection model on Kubernetes with auto-scaling for heavy transactional loads, and improved chatbot accuracy by 15% through metric-driven testing and evaluation. Partners with Marketing on personalization/recommendation initiatives with measurable outcomes tied to customer feedback.

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SA

Junior AI/ML Engineer specializing in LLMs, RAG, and computer vision

Dhaka, Bangladesh3y exp
GradMate.aiAmerican International University-Bangladesh

AI engineer with hands-on experience shipping production systems across semantic search, RAG/LLM applications, and computer vision. Built a personalized e-commerce search platform with measurable relevance and latency gains, and deployed grounded GenAI chat systems that significantly reduced hallucinations while lowering support burden. Also brings edge-deployment experience in monocular depth estimation and 3D reconstruction, suggesting strong breadth across modern applied AI.

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