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Vetted Retrieval-Augmented Generation (RAG) Professionals

Pre-screened and vetted.

PP

Mid-Level Software Engineer specializing in backend, data platforms, and FinTech systems

Remote (US)3y exp
Easley-Dunn ProductionsUSC

Backend engineer with experience at HSBC and Machinations who has delivered major production performance wins (cutting large trade-file upload times from ~13–15s to ~2s) using chunked parallel processing with strong reliability controls. Also built and shipped an applied AI RAG workflow using Langflow + Cohere embeddings + FAISS with hosted/local LLM fallbacks (Hugging Face, Ollama) and production-grade guardrails, observability, and evaluation.

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SG

Shweta Gupta

Screened

Senior Backend Software Engineer specializing in Java microservices, Kafka, and AWS

Seattle, WA6y exp
EasyBee AIUC Irvine

AI engineer who shipped a production chat assistant for a storage company by building the underlying RAG-style knowledge base (document ingestion, chunking/embeddings, FAISS vector store) and an admin update interface to keep content current. Also has full-stack delivery experience (Python REST APIs + React/TypeScript UI) and AWS operations using Terraform/Jenkins, including handling a real production performance incident by optimizing DB queries and adding auto-scaling.

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PV

Poorna Vishnu

Screened

Mid-level AI Engineer specializing in LLM workflows and agent-based systems

Texas City, TX4y exp
T-MobileUniversity of Central Missouri

LLM/agent workflow engineer with production experience at T-Mobile, focused on scalable agent architecture and robust real-time evaluation/monitoring pipelines. Partnered closely with marketing and product to automate customer engagement and other business workflows, translating AI capabilities into measurable KPI impact via dashboards and continuous performance tracking.

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DD

Mid-level Data Scientist specializing in Generative AI, RAG systems, and ML engineering

Amherst, MA6y exp
University of Massachusetts AmherstUniversity of Massachusetts Amherst

AI/LLM engineer who built a production QA RAG for a University of Massachusetts faculty success initiative, cutting service tickets by 70%. Strong end-to-end RAG implementation skills (LangChain, Qdrant, hybrid/HyDE retrieval, FastAPI) with rigorous evaluation (RAGAS, LLM-as-judge) and practical handling of constraints like API rate limits and cost. Prior cross-functional delivery experience collaborating with SMEs and business owners at TCS and IBM.

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NB

Intern Full-Stack Software Engineer specializing in AWS serverless and real-time web apps

New York City, NY0y exp
Toricent LabsNYU

New-grad/early-career engineer who led high-stakes modernization of a field-operations platform from Firebase to AWS using an incremental/dual-write strategy, achieving zero downtime and ~30–32% infra cost reduction while improving scalability. Also built and productionized an AI-native code assistant (LangChain + Pinecone RAG) with measurable online metrics and safety guardrails, and has experience working directly with CEO/CTO/CPO and embedded with customer teams to ship enterprise features quickly.

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AP

Ankit Patra

Screened

Mid-Level Software Engineer specializing in cloud, microservices, and AI/ML

New York, NY6y exp
Binghamton UniversityBinghamton University

Backend/API engineer with ~4 years experience building production services in .NET Core/PostgreSQL/Redis/Docker and optimizing real-world latency issues (claims ~60% response-time improvement). Also built and owned an end-to-end RAG-based AI assistant using Python/FastAPI, OpenAI APIs, and Pinecone, plus agentic workflows with reliability guardrails (retries, confidence thresholds, monitoring). Currently pursuing a master’s degree and targeting a $150k base salary.

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NM

Mid-level Data Engineer specializing in cloud lakehouse, streaming, and MLOps

Texas, USA5y exp
AT&TCal State Fullerton

Data engineer at AT&T focused on large-scale telecom (5G/IoT) data platforms, owning end-to-end pipelines from Kafka/Azure ingestion through Databricks/Delta Lake transformations to serving analytics and ML. Has operated at very high volumes (~50+ TB/day) and delivered measurable performance gains (25–30% faster processing) plus improved reliability via Airflow monitoring, robust data quality checks, and resilient external data collection patterns (rate limiting, retries, dynamic schemas).

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JK

Mid-level Machine Learning & GenAI Engineer specializing in LLMs, RAG, and NLP

New York, NY6y exp
Morgan Stanley

Built and deployed an LLM-powered customer support assistant (“Notable Assistant”) focused on automating common post-customer queries while maintaining multi-turn context and meeting scalability/latency needs. Experienced with production orchestration and operations using Kubernetes and Apache Airflow (DAG-based ETL, scheduling, monitoring/alerts), and has partnered closely with customer service stakeholders to align chatbot behavior with brand voice through iterative testing.

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RL

Ramya Latha

Screened

Senior AI/ML & Data Engineer specializing in Generative AI and RAG systems

Birmingham, AL8y exp
Regions Bank

GenAI/RAG engineer who has deployed a production policy/regulatory search assistant for a financial client using LangChain + Vertex AI, FastAPI, Docker/Kubernetes, and Airflow-orchestrated data pipelines. Demonstrated measurable impact with 50–60% latency reduction and 70% fewer pipeline failures, plus KPI-driven grounding evaluation (90%+ target) and strong cross-functional collaboration with compliance/business teams.

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NS

Naim San

Screened

Senior AI/ML Engineer specializing in Python, RAG systems, and LLM fine-tuning

United States8y exp
Mechanize

Built and owned an end-to-end RAG-based AI support platform at Mechanize (FastAPI/LangChain/Pinecone/React) with rigorous evals and guardrails, driving 45% fewer support tickets and ~$280K annual savings. Also led a high-risk legacy modernization at Argo AI, incrementally extracting a monolithic Django backend using Strangler Fig + feature flags while supporting 10K+ concurrent users.

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AK

Mid-level Software Engineer specializing in cloud-native systems and fraud detection

Sunnyvale, CA4y exp
PNCPortland State University
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SK

Mid-level AI/Data Scientist specializing in NLP, RAG chatbots, and GenAI on AWS

College Park, MD4y exp
University of Maryland, College ParkUniversity of Maryland, Robert H. Smith School of Business
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NY

Junior ML Systems Engineer specializing in distributed ML and simulation

Madison, WI2y exp
Antalya Bilim UniversityUniversity of Wisconsin–Madison
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GN

Junior Software Engineer specializing in LLM backend systems and full-stack AI apps

La Jolla Shores, CA2y exp
CSES E/AccUC San Diego
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SC

Mid-level AI/ML Engineer specializing in NLP, recommender systems, and Generative AI

Remote, USA5y exp
Allianz LifeUniversity at Buffalo
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RK

Mid-level AI/ML Engineer specializing in risk modeling, NLP, and generative AI (RAG/LLMs)

IL, USA5y exp
JPMorgan ChaseUniversity of Illinois Chicago
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VC

Mid-level AI/ML Engineer specializing in Generative AI and LLM solutions

Fort Lauderdale, FL4y exp
U.S. BankFlorida Atlantic University
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NM

Mid-Level Full-Stack Software Engineer specializing in microservices and AWS

Waltham, MA4y exp
Dassault SystèmesNortheastern University
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AK

Senior Machine Learning Engineer specializing in agentic systems, RAG, and edge AI

Plano, TX7y exp
SonicsterUniversity of Texas at Arlington
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RR

Mid-level Full-Stack Developer specializing in React/TypeScript and cloud-native microservices

5y exp
CignaUniversity of Central Missouri
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AK

Mid-level AI/ML Engineer specializing in NLP, MLOps, and predictive modeling

NJ, USA4y exp
Juniper NetworksIndiana Wesleyan University
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CB

Mid-Level Full-Stack Software Engineer specializing in cloud-native web apps

Boston, MA3y exp
Supply TraceNortheastern University
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VP

Junior Software Engineer specializing in LLM applications and retrieval systems

2y exp
HPEPenn State University
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KM

Mid-Level Software Engineer specializing in full-stack systems and applied AI/LLMs

Virginia, USA5y exp
Virginia TechVirginia Tech
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