Vetted Prompt Engineering Professionals

Pre-screened and vetted.

RC

Mid-level Software Engineer specializing in FinTech and AI platforms

USA5y exp
Morgan StanleyUniversity at Buffalo
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AP

Senior Java Full-Stack Engineer specializing in AI-integrated cloud microservices

Kansas, USA7y exp
Capital OneUniversity of Central Missouri
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RG

Intern Full-Stack Software Engineer specializing in web apps, cloud, and game development

Los Angeles, CA1y exp
Easley-Dunn Productions, IncUSC
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LJ

Senior Full-Stack Engineer specializing in compliance, integrations, and data platforms

Houston, TX10y exp
HexagonVirginia State University
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SH

Senior AI Architect specializing in Generative AI and LLM systems

New York City, NY8y exp
Rezolve AI
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SP

Mid-level DevOps & Platform Engineer specializing in Kubernetes and AWS infrastructure

La Jolla, CA6y exp
Altium
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SS

Mid-level AI Engineer specializing in production LLM, RAG, and agentic AI systems

6y exp
Bank of America
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KM

Director-level Engineering Leader specializing in cloud platforms, AI/ML, and scalable SaaS

Brampton, Canada16y exp
Chordline
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ST

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

7y exp
CVS Health
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KR

Senior AI Python Engineer specializing in Generative AI and MLOps

San Francisco, CA8y exp
Silicon Valley Bank
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Prayasha Chaudhary - Senior Engineering Leader specializing in cloud architecture and AI-powered data platforms in Remote

Prayasha Chaudhary

Screened ReferencesModerate rec.

Senior Engineering Leader specializing in cloud architecture and AI-powered data platforms

Remote5y exp
Lunaro CapitalSmith College

Hands-on startup operator with experience across three startups, including companies built from inception and a PEAK6-backed environment. Particularly compelling for early-stage roles: they have rebuilt technical foundations, scaled platforms during growth, and pair strong product ownership with a practical, user-validation-first approach to building scalable systems.

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Fadi Abbas - Executive product leader specializing in AI-native products and EdTech platforms in Dearborn Heights, MI

Fadi Abbas

Screened ReferencesStrong rec.

Executive product leader specializing in AI-native products and EdTech platforms

Dearborn Heights, MI16y exp
MaivenxLund University

Product leader and founder with experience spanning EdTech, AI, LegalTech, and mobile imaging. He co-founded a tutoring platform that grew to 300K+ students and later built citation-grounded legal AI systems designed for high-trust, high-stakes workflows. Particularly compelling is his consistent philosophy of using AI to amplify human expertise rather than replace it, backed by global team leadership and strong product execution across EMEA, the US, and Asia.

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CH

Mid-level AI/ML Engineer specializing in healthcare, risk modeling, and MLOps

Milwaukee, WI3y exp
UnitedHealth GroupUniversity of Wisconsin–Milwaukee

Robotics software engineer who built a ROS Noetic-based perception-to-control stack for a pick-and-place robotic arm, integrating OpenCV/TensorFlow vision with motion planning and PID tuning. Demonstrated strong real-time debugging skills (rosbag, queue/latency fixes) and experience deploying reproducible robotics environments with Gazebo simulation, Docker, and GitLab CI.

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PK

Mid-level AI/ML Engineer specializing in NLP, GenAI, and MLOps in healthcare and finance

USA5y exp
CVS HealthUniversity of Houston

AI/ML engineer with CVS Health experience deploying production LLM systems in regulated healthcare settings, including a large-scale RAG solution (1M+ documents) built for compliance-grade, auditable policy/regulatory Q&A with strong anti-hallucination controls. Also delivered an NLP summarization system for physician notes/case narratives by partnering closely with non-technical care operations stakeholders and iterating via prototypes, dashboards, and feedback loops.

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MS

Mid-Level Software Engineer specializing in Cloud Infrastructure and Full-Stack Platforms

San Jose, CA6y exp
GembizzSan José State University

Built and shipped a production LLM-powered grading platform that automates rubric-aligned scoring and feedback, with strong guardrails (RAG grounding, structured JSON, validation/retries) and operational rigor (metrics, drift monitoring). Experienced using CrewAI to orchestrate multi-agent workflows end-to-end and validating quality via gold-set benchmarking against human graders with regression testing on every prompt/model change.

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SP

Junior AI Engineer specializing in RAG pipelines and agentic AI systems

San Francisco, CA2y exp
Avenio CorporationGeorge Washington University

Built and shipped production RAG/agentic systems in high-stakes domains (biomedical and legal), including an enterprise biomedical document retrieval platform over ~10k scientific docs and a multilingual African-law assistant at the World Bank. Deep hands-on experience with LangChain/LangGraph/LlamaIndex and evaluation tooling (LLM-as-a-judge, safety/hallucination detection), with measurable gains in retrieval quality and hallucination reduction.

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VN

Mid-level Software Engineer specializing in ML, LLM apps, and cloud data systems

Tracy, California4y exp
GeneaUC Santa Cruz

Built a production SQL chatbot for access-log analytics that replaced manual custom report requests with natural-language querying, using LangGraph and a ChromaDB-backed RAG pipeline for grounded, consistent answers. Implemented a privacy-preserving design where the LLM never sees raw customer data (only query metadata) and has experience building multi-agent/tool-calling systems with LangGraph (DeepAgents), including solving sub-agent communication drift via self-reflection.

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BG

Bhavana G

Screened

Mid-level GenAI Engineer specializing in AI agents and RAG systems

Mckinney, Texas4y exp
Capital OneSouthern Arkansas University

Built and deployed a production LLM-based RAG agent platform adopted by multiple business teams (Marketing, GTM, Recruiting, Customer Support) to automate knowledge search, Q&A, and content generation. Emphasizes production-grade reliability (grounding/validation/guardrails), rigorous evaluation/monitoring, and cost-aware scaling via model tiering, prompt/retrieval optimization, and caching using LangChain/LangGraph orchestration.

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VV

Mid-level AI/ML Engineer specializing in LLM fine-tuning, RAG, and MLOps

OH, USA4y exp
Impacter AIUniversity of Dayton

Built an LLM-powered academic research assistant for a professor (LangChain + OpenAI + arXiv) focused on synthesizing papers quickly, with emphasis on reliability (ReAct prompting, citation verification) and cost control (caching). Has production MLOps/orchestration experience at Cisco and HCL Tech using Kubernetes, plus MLflow and GitHub Actions for lifecycle management and CI/CD.

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GS

Mid-level Data Scientist & Generative AI Engineer specializing in LLMs and RAG

Auburn Hills, MI4y exp
StellantisUniversity of Cincinnati

ML/NLP practitioner who built a retrieval-augmented generation (RAG) system for large financial and operational document sets using Sentence-Transformers (all-mpnet-base-v2) and a vector DB (e.g., Pinecone), with a strong focus on retrieval evaluation and chunking strategy optimization. Experienced in entity resolution (rules + embedding similarity with type-specific thresholds) and in productionizing scalable Python data workflows using Airflow/Dagster and Spark.

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IG

Ishwar Girase

Screened

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

Hampton, NJ6y exp
UnumUniversity of Texas at Dallas

AI/ML Engineer who built a production RAG-based LLM system for insurance policy documents, turning thousands of messy PDFs into a searchable index using LangChain, Azure AI Search vectors, hybrid retrieval, and FastAPI. Strong focus on evaluation (MRR/precision@k/recall@k, REGAS) and performance optimization (vLLM), with prior clinical NLP experience using BERT-based NER validated on ground-truth datasets.

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RP

Ruudra Patel

Screened

Junior Data Scientist specializing in ML, LLMs, and RAG applications

Atlanta, GA3y exp
Georgia State UniversityGeorgia State University

University hackathon finalist (2nd place) who built CareerSpark, a production-style multi-agent career guidance app in 24 hours using a hierarchical debate architecture with a moderator/judge agent. Has startup internship experience at LiveSpheres AI using LangChain for multi-LLM orchestration, and demonstrates a structured approach to testing/evaluation (golden sets, integration sims, latency/accuracy KPIs) plus strong non-technical stakeholder communication.

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