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Vetted Power BI Professionals

Pre-screened and vetted.

HB

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

USA3y exp
LumeoFinanceNJIT
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CD

Senior Lifecycle & Email Marketing Manager specializing in customer journeys and retention

Remote13y exp
ClearCaptionsCalifornia State University, Fullerton
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SM

Junior Software Developer specializing in Java and web development

St. Louis, Missouri1y exp
Saint Louis UniversitySaint Louis University
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DG

Intern AI/ML Engineer specializing in NLP, graph analytics, and agentic RAG systems

Dallas, TX2y exp
FlashmockUniversity of North Texas
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RT

Junior AI/ML Engineer specializing in LLM applications, RAG, and multimodal computer vision

Milpitas, CA3y exp
PicaggoKansas State University
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VN

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

Newark, DE6y exp
University of DelawareUniversity of Delaware
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SC

Intern Software Engineer specializing in AI-driven web applications

United States2y exp
Limelight Logic IncUniversity of North Texas
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SL

Senior Data Engineer specializing in Machine Learning and Healthcare Data Platforms

WoodBridge, VA12y exp
Uncommon AnalyticsUniversity of Phoenix
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HV

Mid-level Data Scientist specializing in FinTech and healthcare NLP/LLMs

4y exp
University of North TexasUniversity of North Texas
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MR

Mid-Level Full-Stack .NET Engineer specializing in cloud, APIs, and data analytics

Wisconsin, USA5y exp
Public Service Commission of WisconsinNorthern Illinois University
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VA

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

MI, USA3y exp
University of Michigan-Dearborn
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DS

Dhairya Shah

Screened

Entry-level Machine Learning Engineer specializing in computer vision and systems

Buffalo, NY1y exp
University at BuffaloUniversity at Buffalo

ML-focused builder who has shipped an end-to-end income-class prediction product: built the data pipeline, trained models, deployed via Streamlit with a live UI, and tracked success via accuracy (84%), adoption, and latency. Demonstrates strong practical MLOps instincts (Docker/Streamlit Cloud, logging/monitoring, caching) and data engineering reliability patterns (schema checks, idempotency, retries, backfills) while iterating quickly in ambiguous, solo-project environments.

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PS

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

Nashville, TN6y exp
HS Solutions.INCEastern Illinois University

Building and deploying production in-house, domain-specific LLM chatbots for enterprises that cannot use third-party GPT tools due to internal policies. Focused on reducing latency and improving domain awareness using fine-tuning, continual learning, and advanced RAG/agent retrieval strategies, with experience orchestrating multi-agent workflows via LangChain/LlamaIndex and vector DBs (FAISS, Weaviate, Chroma).

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TS

Tirth Shah

Screened

Mid-level AI/ML Engineer specializing in anomaly detection, data tooling, and cloud-native systems

Chico, CA4y exp
Chico State EnterprisesCalifornia State University, Chico

Backend/platform engineer who built an LLM-driven QA automation system (“mockmouse”) using a Flask orchestration microservice, Socket.IO real-time updates, Redis caching, and strict Pydantic schemas to turn prompts into reliable action graphs and automated browser tests. Has hands-on Kubernetes delivery experience (Docker/Helm/Jenkins) and has supported large migration programs, validating ETL cutovers with 1M+ synthetic records and rigorous output comparisons; also built event-driven monitoring/anomaly detection streaming into Grafana.

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VM

Mid-level AI Engineer specializing in LLM agents, RAG, and data pipelines

4y exp
AllyzentUniversity of Central Florida

Built and productionized LLM-powered workflows that generate contextual insights from structured financial data, including prompt/retrieval design, data standardization, and reliability controls like rate limiting and batching. Also diagnosed and fixed real-time failures in an automated order validation system using logs/metrics, staging reproduction, edge-case handling, retries, and alerting, while supporting sales/customer teams with demos, scripts, and FAQs to drive adoption.

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PK

Mid-level QA Automation Engineer specializing in Playwright and cross-browser E2E testing

3y exp
QAPITOL QAUniversity of North Texas

QA automation engineer with strong end-to-end ownership of UI automation for financial transaction workflows, using Selenium/Playwright/Cypress and CI/CD gating. Improved suite robustness via UI-API validations, negative testing, and flake reduction (intercepts + data-testid), catching critical backend calculation issues before production and cutting regression runtime by 40%.

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HS

Intern Full-Stack Engineer specializing in AI-powered SaaS products

Birmingham, AL1y exp
OGymUniversity of Alabama at Birmingham

Solo builder of OGym, shipping production AI features for gyms that turn member behavior/health data (workouts, attendance, nutrition, payments, device metrics) into prioritized, actionable owner and member insights. Designed and implemented FastAPI backends, PostgreSQL-based RAG workflows, guardrails (RBAC/validation/rate limiting), and real-user evaluation loops, with a strong focus on latency/cost optimization and reliable data pipelines.

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SC

Junior Full-Stack Software Engineer specializing in web apps, data visualization, and HCI

Atlanta, GA1y exp
Georgia State UniversityGeorgia State University

Backend/integration-focused software engineer who built and debugged a complex location modeling system (data pipelines, APIs, optimization logic connected to a dashboard). No direct ROS/robotics experience yet, but demonstrates strong distributed-systems debugging, containerized deployment (Docker), and CI/CD/testing practices and is actively looking to pivot into robotics software.

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JC

Jeet Choksi

Screened

Mid-level Machine Learning Engineer specializing in real-time AI and data platforms

New York, NY3y exp
MyEdMasterUniversity of Colorado Boulder

ML/NLP engineer who has built production systems end-to-end: a real-time recommendation platform (100k+ profiles) using BERTopic-style clustering and a RAG-based news summarization/recommendation stack with ChromaDB. Strong focus on scaling and reliability (GPU batching, Redis caching, Kafka ingestion, Docker/Kubernetes, Prometheus/Grafana) and on maintaining model quality over time via drift monitoring and retraining triggers.

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AG

Athwika Gade

Screened

Junior AI & Data Engineer specializing in ML systems, ETL pipelines, and GenAI

Pittsburg, KS2y exp
Connex AIPittsburg State University

LLM/RAG engineer at Connex AI who built and deployed a production healthcare agent to extract clinical insights from medical data/notes. Strong focus on real-world reliability—hallucination mitigation (citations, schema validation, confidence thresholds, rejection logic), custom LangChain orchestration (query rewriting, fallback paths), and production evaluation/observability—while collaborating closely with clinical SMEs to ensure clinical fit and time savings.

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PS

Junior AI/ML Engineer specializing in GenAI, RAG, and full-stack ML systems

Lawrence, Kansas3y exp
University of KansasUniversity of Kansas

Built a university campus assistant chatbot (BabyJ/WWJ) using RAG and agentic routing with a FastAPI + React stack and JWT auth, focusing heavily on production concerns like latency and reliability. Uses techniques like speculative prefetching, smart intent routing, and rigorous eval/testing (golden sets, regression, edge cases) while collaborating closely with campus admin/advising teams to iterate based on real user feedback.

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SJ

Sukhad Joshi

Screened

Junior Data Scientist specializing in applied ML, LLMs, and analytics automation

Syracuse, NY2y exp
Syracuse UniversitySyracuse University

Research Analyst at Syracuse who deployed an LLM-powered lab automation system allowing researchers to run QCoDeS instrument workflows via natural language, with strong safety guardrails for real instruments and multi-instrument support. Also collaborated with non-technical stakeholders at iConsult on an audio classification/recommendation pipeline, translating business goals into metrics and Tableau dashboards with model comparisons and A/B test results.

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VN

Mid-level Full-Stack Developer specializing in Python/Django and React

Little Rock, AR4y exp
Hexanika, IncFlorida Atlantic University

Backend engineer at Hexanika who owned a real-time fraud-detection platform: built Django microservices, integrated a GenAI anomaly-scoring model, and optimized data/infra for low-latency production (including ~40% query-latency reduction). Experienced running containerized services on AWS/GCP with Kubernetes/GKE, GitHub Actions-based CI/CD + GitOps, and building Pub/Sub streaming pipelines and on-prem-to-cloud migrations.

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