Vetted Prompt Engineering Professionals

Pre-screened and vetted.

BT

Mid-level Software Engineer specializing in AI, data engineering, and cloud systems

San Francisco Bay Area, CA3y exp
SalesforceUniversity at Buffalo
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ME

Intern Machine Learning Engineer specializing in LLMs, retrieval, and vision-language models

San Jose, CA3y exp
AdobeSan José State University
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AP

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

5y exp
Northern TrustGrand Valley State University
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GM

Mid-level AI/ML Product & Solutions Specialist specializing in GenAI and MLOps

Remote, U.S5y exp
ExtensisHRCarnegie Mellon University
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KS

Director-level HRIS & HR Transformation leader specializing in Workday, ServiceNow, and people analytics

Westbury, New York11y exp
Amber Court Assisted LivingSusquehanna University
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XY

Mid-Level Software Engineer specializing in AI systems and full-stack development

Atlanta, GA3y exp
Joblogic-XUniversity of Texas at Austin
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SR

Mid-level AI/ML Engineer specializing in forecasting, MLOps, and generative AI

Remote, USA3y exp
Fisher InvestmentsUniversity of Missouri-Kansas City
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VP

Mid-level Software Developer specializing in backend, cloud-native systems, and AI automation

Richardson, TX3y exp
Goldman SachsUniversity of Texas at Arlington
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RD

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

USA, USA4y exp
Scale AIUniversity of Texas at Arlington
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JK

Senior Full-Stack Engineer specializing in web, mobile, and product growth

San Francisco, CA7y exp
KeeperFlatiron School
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SV

Director-level AI/ML engineering leader specializing in platform and product development

Mountain View, CA10y exp
Motley DataSanta Clara University
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AH

Senior Full-Stack Engineer specializing in backend, cloud, and AI systems

New York, NY8y exp
Istream Solution
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AR

Adithya Rajendra

Screened ReferencesStrong rec.

Junior Data Engineer specializing in Azure data platforms and GenAI analytics

Bengaluru, India1y exp
ZEISSUC Irvine

Data/ML practitioner with experience spanning medical imaging (retinal vessel analysis for hypertension/CVD risk prediction) and enterprise data engineering at Carl Zeiss. Built large-scale SAP data cleaning/validation pipelines (10M+ daily records, ~99% accuracy) and RAG-based semantic search with LangChain/vector DBs that cut manual querying by 82%, plus automation that reduced data onboarding from 8 hours to 12 minutes.

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Jayadeep Nukala - Mid-level Full-Stack Engineer specializing in AI platforms and FinTech in USA

Jayadeep Nukala

Screened ReferencesStrong rec.

Mid-level Full-Stack Engineer specializing in AI platforms and FinTech

USA3y exp
CitigroupUniversity of Texas at Dallas

Built full-stack and AI-driven products spanning banking KYC modernization and enterprise software testing automation. Particularly strong in productionizing LLM workflows in regulated environments, using deterministic orchestration, RAG, and human-in-the-loop controls to improve test coverage to 80% and reduce QA reporting burden by over 50%.

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JS

Johnnie Sanders

Screened ReferencesModerate rec.

Executive AI Architect specializing in enterprise cloud and FinTech solutions

Lewisville, TX15y exp
11-11 Solutions Ent.Purdue University

Candidate brings an operator-to-founder profile with leadership experience in IT and Business Systems and a strong grasp of how ideas become venture-backable products. They speak fluently about startup evaluation criteria such as TAM, technical defensibility, speed to scale, and AI differentiation, and appear especially motivated by building solutions end-to-end in startup or venture studio environments.

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SD

Sanya Dod

Screened

Junior Software Engineer specializing in AI/ML and verification

West Lafayette, IN2y exp
WISE Lab, Purdue UniversityPurdue University

Embedded/real-time robotics-style engineer with hands-on STM32 development, sensor integration, and low-level drivers, focused on deterministic control behavior. Demonstrated systematic debugging of jitter/latency by instrumenting the sensing-to-actuation pipeline and eliminating blocking via interrupts, hardware timers, and DMA; also designs asynchronous, message-based interfaces for distributed real-time components. Familiar with ROS/ROS2 concepts (nodes/topics/callbacks) though not yet deployed a full production ROS system.

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SS

Saffinah Shi

Screened

Junior Software Engineer specializing in full-stack, cloud serverless, and AI systems

Los Angeles, US2y exp
CoreSpeedNorthwestern University

SDE who worked on an MGICS Lab robotics project building a multi-agent model to help agents understand tasks and generate robot instructions, emphasizing task-splitting, checking, and a reflection agent to improve accuracy. Also has experience using GitHub with automated CI/CD pipelines.

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CC

Caden Cheah

Screened

Intern Full-Stack/ML Engineer specializing in LLM applications and mobile development

Los Angeles, CA1y exp
IlloominateUC Berkeley

Backend engineer who built a serverless AWS Lambda microservices backend for a parenting assistance mobile app, including a personalized recommendation system optimized to sub-500ms via precomputed scoring and DynamoDB caching. Demonstrates strong production pragmatism: CloudWatch-driven performance tuning (provisioned concurrency), zero-downtime phased schema migrations, and robustness patterns like optimistic locking and request deduplication. Also led a refactor of an LLM RAG pipeline to improve retrieval quality and cut latency from ~5s to ~3s.

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AP

Anurag Patil

Screened

Mid-level Data Analyst specializing in machine learning, ETL, and real-world evidence analytics

California, USA6y exp
AbbVieUC Irvine

Developed and productionized an AI-driven "indication finding" system for AbbVie to identify additional diseases a drug could target, working closely with clinical research teams on cohort inclusion/exclusion criteria and disease rollups. Leveraged an LLM to map clinical inputs to ICD codes and built configuration-driven ML pipelines (Cloudera ML, YAML, scheduled jobs) with structured testing and evaluation for reliability.

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KM

Mid-Level AI/ML Software Engineer specializing in agentic LLM systems

Dallas, Texas6y exp
DatatronUniversity of West Florida

Built and deployed a production LLM-powered multi-agent compliance copilot (life sciences/finance) using LangChain/LangGraph + RAG over vector databases, delivered via async FastAPI on Kubernetes. Emphasizes audit-ready, deterministic outputs with schema constraints and citations, plus rigorous evaluation/monitoring; reports 60%+ reduction in manual research time and successful production adoption.

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JT

Jingyi Tian

Screened

Junior Machine Learning Engineer specializing in MLOps and LLM/RAG systems

Houston, TX2y exp
Daxwell, LLCColumbia University

LLM/agentic workflow builder focused on productionizing document-processing systems. Redesigned pipelines with LangGraph + RAG, schema-aware validation, and eval/monitoring loops; known for fast incident diagnosis (restored accuracy from ~70% to >95% same day). Partners closely with sales and stakeholders to deliver tailored demos and drive adoption (reported +40%).

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MP

Malav Pandya

Screened

Senior Solutions Engineer specializing in Enterprise SaaS, MarTech integrations, and AI agents

Los Angeles, California9y exp
Triple WhaleUC Irvine

At Triple Whale, partnered with product, engineering, and sales to bring enterprise LLM-based budget recommendation agents from impressive prototypes to trusted production workflows. Strong in prompt/input tuning, explainable structured outputs, and running tightly-scoped POCs with clear success criteria—plus hands-on technical demos and post-sale implementation to drive adoption.

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SM

Shravya M

Screened

Senior AI/ML Engineer specializing in NLP, LLMs, and MLOps

Texas, USA6y exp
CVS HealthUniversity of North Texas

LLM/agent workflow engineer with healthcare experience (CVS/CBS Health) who built and deployed a production call-insights platform using Azure OpenAI + LangChain/LangGraph, including sentiment and compliance checks. Demonstrates deep HIPAA/PHI handling (tenant-contained processing, redaction, RBAC/encryption/audit logging) and production rigor (testing, eval sets, validation/retries, autoscaling) to scale to thousands of transcripts.

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