Vetted Power BI Professionals

Pre-screened and vetted.

Andrew Stock - Executive sales and operations leader specializing in solar, staffing, and growth strategy in Sacramento, CA

Andrew Stock

Screened

Executive sales and operations leader specializing in solar, staffing, and growth strategy

Sacramento, CA24y exp
Advocate EnergyFlorida State University

Entrepreneurial operator with prior CEO experience leading a SaaS company in the solar space, including two years of venture fundraising, accelerator participation, and raising two small rounds of capital. Currently consulting for a startup with an option to become CEO, but is selectively seeking stronger opportunities based on sharp judgment around business model viability, founder quality, and market risk.

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JL

Jordan Lisnow

Screened

Mid-level capital markets analyst specializing in trading, investing, and venture finance

New York, NY8y exp
BNY MellonUniversity of South Carolina

Three-time co-founder with experience building both bootstrapped and funded startups, including raising $150K personally and advising companies that raised $500K+ in angel and pre-seed capital. Brings unusually broad startup operating range across customer discovery, product, GTM, hiring, legal, fundraising, and VC/studio mechanics, with entrepreneurial experience dating back to childhood and multiple business exits in college.

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Atharv Sankpal - Mid-level Data Analyst specializing in financial and healthcare analytics in Baltimore, MD

Mid-level Data Analyst specializing in financial and healthcare analytics

Baltimore, MD4y exp
AIGUMBC

Analytics professional with experience at JPMorgan and Deloitte, focused on financial and risk data. They stand out for building scalable SQL/Python data pipelines, KPI and forecasting dashboards, and retention/cohort metrics that improved reporting reliability, forecast accuracy, and planning speed.

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SG

Mid-level Data Analyst specializing in business intelligence and cloud data platforms

Stamford, CT4y exp
Franklin TempletonUniversity of Bridgeport

Healthcare analytics professional with TCS/Humana experience turning messy claims and eligibility data into reliable reporting assets using SQL and Python. They combine strong data engineering and analytics execution with stakeholder management, including automating monthly claims reporting from half a day to under 5 minutes and driving a provider outreach effort that reduced claim rejection rates by about 20%.

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JS

Jeevan Satish

Screened

Mid-level Business Analyst specializing in healthcare and enterprise technology

San Jose, CA4y exp
UnitedHealth GroupDrexel University

Analytics professional with healthcare experience at United Health Group, focused on turning messy claims and transaction data into reliable reporting assets. They combine SQL, Python, and Power BI to automate analysis, define operational KPIs, and build dashboards that improved stakeholder visibility and helped reduce processing time by about 22%.

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JJ

Jiaji Jin

Screened

Junior marketing analytics professional specializing in growth, e-commerce, and creator campaigns

Los Angeles, CA2y exp
ChargerzillaUSC

Outbound-focused candidate with experience spanning EV charging/business development and e-commerce agency outreach. They combine cold calling, digital marketing, and message testing to generate qualified conversations, including booking local business owners to speak with a CEO about EV charger installation and app-host partnerships.

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Niranjaan Munuswamy - Mid-level Full-Stack Software Engineer specializing in cloud and data engineering in Chicago, IL

Mid-level Full-Stack Software Engineer specializing in cloud and data engineering

Chicago, IL4y exp
CignaIllinois Institute of Technology

Backend engineer with experience at Cigna evolving REST API services backed by PostgreSQL, emphasizing reliability/correctness, scalability, and observability. Has hands-on production experience with FastAPI (contract-first design, Pydantic schemas), performance tuning (indexes, caching), and secure auth patterns (OAuth/JWT, RBAC, row-level security via Supabase), plus low-risk incremental rollouts using feature flags and dual writes.

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KP

Director-level Sales Leader specializing in Healthcare IT and Enterprise Technology

Ridgewood, NJ21y exp
InovalonNortheastern University

Sales leader with experience scaling national enterprise/public-sector sales across healthcare, tech, and government markets. At Jaco Inc, they grew a business unit from roughly $3M to nearly $100M annually while building a repeatable, metrics-driven organization and national channel partner program. Currently operating in a high-performance strategic account environment at Inovalon, with strength in complex multi-stakeholder SaaS deals and recurring revenue growth.

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WH

Wendy Holtz

Screened

Executive sales and marketing leader specializing in enablement and multi-brand growth

Florida, USA12y exp
Super Home ServicesSan Diego State University

Growth and operations leader with 12+ years spanning corporate, private equity, entrepreneurial, and consulting environments. They have led multi-brand and international GTM initiatives at scale, including managing $12M+ budgets, overseeing an 850+ associate sales organization, launching a 4-language digital contract program, and driving 30% consecutive annual growth plus $8M in incremental revenue.

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CG

Executive product leader specializing in SaaS, cloud, HRTech, and healthcare IT

Florida, USA15y exp
MedEvolveFlorida Atlantic University

Product leader with recent experience at Metavol building analytics and AI capabilities, including a net-new Power Analytics product that drove $2.5M ARR in its first year. Combines BI and healthcare workflow expertise with strong user-centered modernization work, including simplifying complex reporting through LLMs and improving legacy product usability by removing VPN/RDP friction.

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SR

Senior Full-Stack Software Engineer specializing in AI agents and data platforms

Remote7y exp
AT&TCalifornia State University, Los Angeles

Full-stack and AI-focused builder who has shipped both customer-facing personalization at AT&T and internal LLM-powered automation/agent systems in startup environments. Stands out for combining TypeScript-heavy engineering rigor with practical AI orchestration, evaluation, and measurable business impact—from reducing support escalation through personalization to saving 10-11 hours per week by automating fragmented operational workflows.

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Mahdiyya Oke - Mid-level AI product and operations leader specializing in 0-to-1 systems building in Cleveland, OH

Mahdiyya Oke

Screened

Mid-level AI product and operations leader specializing in 0-to-1 systems building

Cleveland, OH6y exp
Parker HannifinArizona State University

Founding operator turned AI product owner who has built systems from scratch in both physical and digital businesses. They helped launch an early-stage restaurant startup, owning everything from menu/vendor ops to payroll and infrastructure, then moved into leading enterprise AI chatbot initiatives and a two-sided marketplace product, showing unusual range across operations, product, and marketplace strategy.

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PP

Pedro Pongo

Screened

Senior Lifecycle & Growth Marketing Leader specializing in CRM and customer journeys

Toronto, Canada17y exp
ClaroPontifical Catholic University of Peru

Value-added services leader at América Móvil (Claro Peru) who launched and scaled a gaming app through telco distribution, using revenue-share partnerships and multi-channel GTM (SMS, app notifications, retail/distributors). Strong in data-driven segmentation and continuous optimization of acquisition/engagement loops, with success measured via activations, usage/retention, and incremental revenue.

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BN

Brian Nunez

Screened

Senior Talent Acquisition & Workforce Programs Leader specializing in recruiting, DEI, and compliance

Los Angeles, CA9y exp
American Red CrossUniversity of Massachusetts Boston

Recruiting leader from a workforce development environment ("backwards recruiting") focused on service-industry roles, with experience managing up to 6 recruiters. Known for implementing scalable recruiting process improvements (KPI tracking and standardized screening) and partnering closely with HRBPs and executive stakeholders, and is energized by hands-on executive search work.

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AV

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps

Chantilly, VA3y exp
VerizonUniversity of North Texas

LLM/agentic systems engineer who built a production "Agentic AI Diagnostic Assistant" for network engineers, using a multi-agent Llama 2 + LangChain architecture with RAG over telemetry/incident data in DynamoDB and confidence-based deferrals to reduce hallucinations. Also has strong MLOps/orchestration experience (Airflow, EventBridge, Spark, Docker, SageMaker/ECS) at multi-terabyte/day scale and delivered multilingual NLP analytics (fine-tuned BERT/spaCy) for support operations through hands-on stakeholder workshops.

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AK

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

USA4y exp
CignaTexas Tech University

ML/AI engineer with healthcare payer experience (Signal Healthcare, Cigna) who has shipped production fraud/claims prediction systems using Python/TensorFlow and exposed them via FastAPI/Flask microservices integrated with EHR and Salesforce. Emphasizes operational reliability and trust—Airflow-orchestrated pipelines with data quality gates plus SHAP-based interpretability, A/B testing, and drift/debug workflows—backed by reported outcomes of 22% lower false payouts and 17% higher model accuracy.

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MD

Mid-level Full-Stack Developer specializing in web platforms and cloud (AWS)

United States4y exp
Lincoln FinancialCalifornia State University, Long Beach

Full-stack engineer with financial services experience (Lincoln Financial) who owned a customer-facing financial portal end-to-end using TypeScript/React and Node/Express. Has hands-on microservices and RabbitMQ event-driven workflows, addressing scale issues like retries/duplicates with idempotency and traceable logging, and built an internal real-time ops/support dashboard to improve monitoring and incident response.

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OR

Mid-level Data Scientist specializing in predictive modeling, NLP/LLMs, and RAG search systems

Des Moines, IA6y exp
CDS GlobalUniversity of Massachusetts

Built production LLM/RAG platforms for financial services to enable natural-language Q&A over large policy/compliance document sets stored in Snowflake and SharePoint. Strong in MLOps and orchestration (Airflow, ADF, Step Functions, MLflow) and in solving real production issues like stale embeddings and model performance, including an incremental Snowflake Streams sync that cut processing time from hours to minutes.

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RA

Rahul Alle

Screened

Mid-level Machine Learning Engineer specializing in NLP, LLMs, and MLOps

USA4y exp
CVS HealthAnderson University

Built a production internal LLM/RAG assistant at CVS Health to cut time spent searching long policy and clinical guideline PDFs, combining fine-tuned BERT/GPT models with FAISS retrieval and a FastAPI service on AWS. Demonstrates strong real-world reliability work (document cleanup, hallucination controls, monitoring/drift tracking with MLflow) and close collaboration with non-technical clinical operations teams via demos and feedback-driven iteration.

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TN

Mid-level Data Scientist & AI/ML Engineer specializing in GenAI and cloud ML

Harrison, NJ5y exp
State FarmMonroe University

GenAI/LLM engineer who recently built a production compliance assistant at State Farm for KYC/AML and regulatory teams, using AWS Bedrock + LangChain with Textract/Lambda pipelines to extract fields, tag risk, and summarize long documents. Implemented RAG, strict structured outputs, and human-in-the-loop guardrails, and reports automating ~80% of documentation work while reducing review time by ~40%.

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HK

Mid-level Data Analyst specializing in cloud ETL, BI, and machine learning

Texas, 752235y exp
UnitedHealth GroupUniversity of Texas at Arlington

Data/ML practitioner with experience at UnitedHealth Group building a fraud claims detection solution combining structured claims data and unstructured notes, validated with compliance stakeholders to improve actionable accuracy. Also applied embeddings, vector databases, and fine-tuned language models in a Bank of America capstone to detect threats/anomalies in financial documents, with production-minded Python ETL workflows using Airflow.

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HS

Mid-level Full-Stack Engineer specializing in cloud data platforms and LLM-powered apps

New York City, NY4y exp
CenteneUniversity of Maryland, Baltimore County

Full-stack engineer with healthcare and finance experience who has owned end-to-end production systems across Azure and AWS. Built a real-time clinical dashboard at Centene (React + FastAPI + Azure Event Hubs) that cut data latency from ~12 minutes to under 1 minute and was associated with a 30% reduction in intervention delays. Also delivered MVPs in high-ambiguity environments at Accenture during monolith-to-microservices migration, improving uptime and maintainability with measurable results.

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JM

Mid-level Data Scientist / ML Engineer specializing in FinTech and Healthcare ML systems

4y exp
FiservSan Diego State University

AI/LLM engineer who has shipped production RAG systems (including a 250K-document compliance knowledge tool on AWS) and focuses on reliability via citations, guardrails, and rigorous evaluation (Ragas/Opik/DeepEval). Also built a LangGraph-orchestrated webcrawler agent that cut research paper extraction from hours to minutes, and collaborated with clinical teams to deliver patient volume forecasting with an optimization layer for staffing.

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KT

Kavita Tamire

Screened

Mid-level Data Engineer specializing in AWS cloud data platforms

California, USA3y exp
Charter CommunicationsUniversity of South Florida

Data engineer with Charter Communications experience modernizing large-scale AWS data lake pipelines: ingesting S3 data, validating against legacy systems, transforming with PySpark/Spark SQL, and serving via Iceberg/Delta tables. Worked at 50M–300M record scale, delivered >99.5% data match, and built monitoring/alerting (CloudWatch/SNS) plus retry orchestration (Step Functions) and data quality gates (Great Expectations).

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