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Vetted Power BI Professionals

Pre-screened and vetted.

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SK

Sai Krishna Chittanuri

Screened

Mid-level Data Scientist specializing in real-time fraud detection and MLOps

San Francisco, CA5y exp
Charles SchwabCUNY Graduate Center

“ML/NLP engineer with experience at Charles Schwab building an NLP + graph (Neo4j) entity-resolution system to unify fragmented user/device/transaction data and improve downstream model quality and analyst querying. Has applied embeddings (SentenceTransformers + FAISS) with domain fine-tuning to boost hard-case matching recall by ~12% while maintaining precision, and has a track record of hardening scalable Python/Spark pipelines and productionizing fraud models via A/B tests and shadow-mode monitoring.”

PythonRSQLPandasNumPyPySpark+120
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AB

Alekya Battu

Screened

Mid-level Data Scientist specializing in ML, NLP, and MLOps

USA5y exp
Wells FargoWilmington University

“Senior data scientist with ~5 years’ experience building production ML/NLP systems in finance (Wells Fargo) and deep learning for sensor analytics in connected vehicles (Medtronic). Has delivered end-to-end platforms combining time-series forecasting with transformer-based NLP, including automated drift monitoring/retraining (MLflow + Airflow) and standardized Docker/CI/CD deployments; achieved a reported 22% precision improvement after domain fine-tuning.”

AgileScrumKanbanSDLCCI/CDWaterfall+144
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SR

Sanjay Rao

Screened

Mid-Level QA Test Engineer specializing in mobile app testing and automation

Remote3y exp
CitibankGeorge Mason University

“QA engineer with Citibank experience owning mobile automation and cross-platform validation (Android/iOS), including push notifications, RBAC, and backend API/data sync checks. Demonstrates strong Cypress/JavaScript E2E expertise—stabilizing CI-flaky React tests via cy.intercept—and builds pragmatic GitLab CI pipelines with smoke/regression gating plus rich reporting (Cypress Dashboard, Slack).”

Functional TestingRegression TestingTest Case DesignJiraPerformance TestingTest Automation+79
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OP

Ojasmitha Pedirappagari

Screened

Mid-level AI Engineer specializing in LLMs, RAG, and agentic platforms

Jersey City, NJ5y exp
Nurture HoldingsUC Santa Cruz

“Built and shipped a production RAG-based assistant that lets parents ask natural-language questions about their child’s learning progress, using pgvector retrieval (child-id filtered) and Redis caching to hit ~180ms latency. Implemented real-world guardrails and compliance (Llama Guard, COPPA, retrieval thresholds, fallbacks) with 99.5% uptime, and ran human-in-the-loop eval loops that improved satisfaction from 3.8 to 4.2 while serving 60k+ monthly users and reducing costs significantly.”

PythonSQLC#TypeScriptJavaScriptAWS+83
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AR

Akshaya Ramprasad

Screened

Senior Customer Success Manager specializing in SaaS marketing platforms and analytics

San Francisco, CA8y exp
YesviteCalifornia State University, Long Beach

“Enterprise Customer Success professional (Iron Mountain Services) who owns accounts end-to-end from onboarding through renewal, with a strong focus on driving adoption via success plans, stakeholder alignment, and integration unblocking across Product/Engineering/Sales. Also has adjacent martech/analytics exposure (Google Analytics, Search Console, SEO audit tools) and experience translating customer feedback and usage data into roadmap-impacting product requirements.”

TableauPower BIA/B TestingDashboard DevelopmentStakeholder CommunicationCross-Functional Collaboration+50
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AB

Ankush Banthia

Screened

Senior Data & Platform Engineer specializing in cloud-native streaming and distributed systems

USA10y exp
JPMorgan ChaseNew York Institute of Technology

“Financial data engineer who has built and operated high-volume batch + streaming pipelines (200–300 GB/day; 5–10k events/sec) using AWS, Spark/Delta, Airflow, Kafka, and Snowflake, with strong emphasis on data quality and reliability. Demonstrated measurable impact via 99.9% SLA adherence, major reductions in bad records/nulls, MTTR improvements, and significant latency/runtime/query performance gains; also built a distributed web-scraping system processing 5–10M records/day with anti-bot and schema-drift defenses.”

OnboardingMentoringAgileScrumJiraConfluence+150
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MS

Madhupal Singu

Screened

Mid-level Data Engineer specializing in multi-cloud data platforms for healthcare and finance

USA6y exp
CignaUniversity of Cincinnati

“Data engineer with Cigna experience building and operating an end-to-end AWS-based healthcare claims pipeline processing ~2TB/day, using Glue/Kafka/PySpark/SQL into Redshift. Strong focus on data quality and reliability (schema validation, monitoring/alerting, retries/checkpointing/backfills), reporting improved accuracy (~99%) and reduced latency, plus experience serving real-time Kafka/Spark data to downstream analytics with documented data contracts.”

PythonPandasPySparkSQLScalaJava+88
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RM

Raviteja Maramreddy

Screened

Mid-level Full-Stack Software Engineer specializing in microservices and scalable backend systems

Fayetteville, AR5y exp
University of ArkansasUniversity of Arkansas

“Backend/microservices engineer (Java/Spring Boot, Kafka, Angular microfrontends) with Teradata experience building distributed analytics/query routing platforms and delivering 20–30% latency reductions through event-driven redesign and reliability hardening. Also built and shipped an end-to-end multimodal medical imaging AI feature (LLaVA/Mistral 7B + LoRA) with production guardrails like confidence-based human review, drift monitoring, and audit logs.”

MicroservicesJavaGoCSpring BootSpring MVC+110
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SP

Shubham Pandey

Screened

Mid-level Procurement Analyst specializing in strategic sourcing for industrial and semiconductor manufacturing

New York, USA4y exp
ITT Goulds PumpsSyracuse University

“Strategic sourcing/procurement professional with experience at Gumpro and Micron leading indirect (MRO/CapEx) and critical component sourcing initiatives. Uses structured category strategy (spend/Kraljic/Pareto), RFX, risk management, and TCO/should-cost models; reports $10M+ savings and lead-time reduction from 60 days to 2 days while mitigating geopolitical/tariff exposure and strengthening supply resilience.”

Contract NegotiationMarket ResearchForecastingProcess ImprovementDashboardingData Visualization+108
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DB

Daniel Berhane Araya

Screened

Senior AI/ML Engineer specializing in production-grade LLM systems for regulated finance

Fairfax, VA9y exp
George Mason UniversityGeorge Mason University

“AI/LLM engineer with published work who built FinVet, a production financial misinformation detection system using multi-pipeline RAG, confidence-based voting, and evidence-backed outputs (F1 0.85, +37% vs baseline). Also built NexusForest-MCP, a Dockerized Model Context Protocol server exposing structured global deforestation/carbon data via SQL tools for reliable LLM tool use. Previously delivered borrower risk-rating (PD) models at BMO Financial Group that were validated and integrated into an enterprise credit system through close collaboration with credit officers and portfolio managers.”

PythonNumPyPandasSQLPostgreSQLSQLite+112
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MK

Mrunal Kakirwar

Screened

Mid-level Full-Stack Engineer specializing in cloud-native microservices and AI automation

USA5y exp
Fuel AICalifornia State University

“Software engineer/product owner who has led end-to-end delivery of AI and content-management platforms, including building RAG-based reliability improvements and migrating fragile systems to containerized AWS ECS/Kubernetes with Terraform-managed CI/CD. Experienced designing event-driven microservices (SQS/SNS/RabbitMQ), scaling queue consumers with autoscaling, and creating internal Python tooling to standardize data connectors (e.g., BigQuery/Airtable/internal APIs) to speed iteration.”

PythonJavaScriptTypeScriptShell ScriptingJavaSQL+108
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AP

Akam Pachachi

Screened

Executive Sales & Partnerships Leader specializing in Enterprise SaaS, Travel Tech, and Market Expansion

Oshawa, Canada14y exp
TraverontoFanshawe College

“Partnerships and growth leader (Traveronto) specializing in partner-led GTM through enterprise/API integrations and white-label distribution. Uses rigorous analytics (audience overlap, engagement quality, cohort retention/LTV) to source and scale creator/platform partnerships, and runs funnel-driven A/B tests on onboarding and pricing to improve activation, GMV, and recurring revenue while keeping CAC low.”

ForecastingBudgetingBusiness DevelopmentAccount ManagementCoachingChange Management+110
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BS

BHEEMA SABILLA

Screened

Mid-level Data Engineer specializing in Lakehouse, Streaming, and ML/LLM data systems

Remote, USA3y exp
DiscoverUniversity of South Dakota

“Built and productionized an enterprise retrieval-augmented generation platform for internal knowledge over large unstructured corpora, emphasizing trust via strict citation/grounding and hybrid retrieval (BM25 + FAISS + cross-encoder re-ranking). Demonstrates strong scaling and cost/latency optimization through incremental indexing/embedding and index partitioning, plus disciplined evaluation/observability practices. Has experience operationalizing pipelines with Airflow/Databricks/GitHub Actions and partnering closely with risk & compliance stakeholders on auditability requirements.”

PythonPySparkSQLScalaPandasNumPy+157
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SS

Somil Shah

Screened

Mid-level AI/ML Engineer specializing in generative AI, RAG platforms, and LLM agents

San Francisco, CA4y exp
INTERACT Animal LabNortheastern University

“AI/LLM engineer who has shipped 10+ production applications, including InvestIQ on GCP—a production-grade RAG due-diligence engine that ethically scrapes web/PDF sources, builds a ChromaDB knowledge base, and delivers analyst-style dashboards plus a citation-backed chat copilot. Deep focus on reliability (evidence-only answers, hard citations, refusal gating), retrieval tuning, and orchestration (Airflow/Cloud Composer), plus multi-agent systems (CrewAI with 7 specialized finance agents).”

API DevelopmentBashBigQueryBusiness IntelligenceChromaDBCI/CD+136
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TT

Thrinesh Thode

Screened

Mid-level AI/ML Engineer specializing in MLOps and LLM applications

New York, NY4y exp
BNY MellonUniversity at Albany

“BNY Mellon engineer who has built and operated production AI systems end-to-end: a LangChain/Pinecone RAG platform scaled via FastAPI + Kubernetes to 1000 RPM with 99.9% uptime, supported by monitoring and data-drift detection. Also deep in data/infra orchestration (Airflow, Dagster, Terraform on AWS/EMR/EC2), processing 500GB+ daily and delivering measurable reliability and performance gains, plus strong compliance-facing model explainability using SHAP and Tableau.”

A/B TestingApache KafkaApache SparkAWSAWS LambdaBERT+86
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LW

Lingyi Wu

Screened

Mid-level Financial/Data Analyst specializing in analytics, forecasting, and healthcare/MarTech data

Los Angeles, CA4y exp
MINISOWestcliff University

“Growth/creative marketer from Esleydunn Games who uses Google Analytics to integrate cross-channel performance data (TikTok, YouTube, LinkedIn, Facebook) and run structured A/B tests on video ad length and layout. Reported reducing CPA by 20 per customer when leveraging YouTube and TikTok, and improved CTR through CTA/button placement testing and ongoing user-feedback loops (forum/WeChat topics).”

PythonSQLRMachine LearningDeep LearningFeature Engineering+104
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EJ

Eashan Joshi

Screened

Junior Hardware/Product Engineer specializing in PCB design, NPI, and FPGA validation

Irvine, CA1y exp
Hummingbird TekSystems IncNorth Carolina State University

“Backend/platform engineer who owned a Python-based smart finance assistant backend, building async FastAPI microservices with PostgreSQL/Redis and deploying to AWS EKS via Docker/Helm and CI/CD (GitHub Actions, Jenkins). Strong in production reliability and migrations—implemented observability (Prometheus/Grafana), security (JWT RBAC), and executed a low-downtime monolith-to-microservices migration plus Kafka-based event streaming with ordering/retry/idempotency patterns.”

AgileCC++Integration TestingInventory ManagementMATLAB+128
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SV

Sri Vyshnavi Maganti

Screened

Senior Business Analytics Analyst specializing in product and customer analytics

Texas, USA7y exp
MovateUniversity of New Haven

“Darwinbox team member who supported talent/recruiting operations while also driving product improvements across HR modules (recruitment, onboarding, payroll, performance). Led a small team (5–6) and implemented discovery-driven configuration and BI reporting (Power BI/Tableau/Confluence), including a reported 30% reduction in recruitment configuration issues and real-time funnel reporting to support fast hiring.”

A/B TestingBusiness IntelligenceCross-functional CollaborationData AnalyticsData PipelinesData Validation+38
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VK

Varun Kumar Kota

Screened

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

Remote3y exp
HandshakeUniversity at Buffalo

“Backend/platform engineer who owned an AI-powered resume optimization service end-to-end (FastAPI + Celery + Redis/Postgres) and optimized it for unpredictable LLM task latency. Strong Kubernetes/GitOps practitioner (Helm, autoscaling, probes, ArgoCD rollbacks) with experience in on-prem-to-cloud migrations using Terraform and CDC-based replication, plus real-time Kafka pipelines monitored via Prometheus/Grafana.”

PythonSQLRJavaJavaScriptJira+125
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SG

Serhiy Gembara

Screened

Director-level SAP & Enterprise Applications Leader specializing in transformation and delivery

Folsom, CA12y exp
Pacific Coast CompaniesLviv Polytechnic National University

“Engineering/IT leader with 12+ years of people management and deep ERP ecosystem experience, including SAP S/4HANA and large-scale integrations (APIs/EDI/e-commerce). Managed an 11-person cross-functional team supporting multiple business domains and led process improvements like support-cycle/ticketing and documentation, plus regression test automation strategy driven by business-critical prioritization.”

C#SQLPythonJavaScriptAWSPower BI+121
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CM

Cherrice Mason

Screened

Director-level Talent Acquisition Operations leader specializing in global TA programs, HRIS/ATS, and compliance

Dallas County, Texas18y exp
Global Medical ResponseBurdett College

“Talent Acquisition Operations leader with 15+ years spanning aviation and helicopter rescue/emergency services through manufacturing, healthcare, and SaaS. Has led teams up to 30 and recently drove a major shift from a business-unit recruiting model to shared services across 8 units, improving Workday reporting/integrations and helping a SkillBridge program exceed goals by 100%.”

Power BIChange managementProject managementPerformance managementCoachingStakeholder management+74
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MB

Mohithkumar Bolisetti

Screened

Mid-level Java Full-Stack Developer specializing in microservices and cloud platforms

Strongsville, Ohio5y exp
PNCUniversity of Dayton

“Full-stack engineer focused on modernizing legacy financial/compliance platforms into cloud-native, domain-driven microservices. Deep hands-on experience across Spring Boot/Kafka/Redis/Postgres-Mongo backends and React/Angular frontends, with strong CI/CD and Kubernetes/OpenShift deployment practices for real-time, high-volume workloads.”

JavaPythonJavaScriptTypeScriptSQLPL/SQL+169
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NK

Nandini Kosgi

Screened

Mid-level AI/ML Engineer specializing in NLP, RAG systems, and real-time risk modeling

PA, USA4y exp
Capital OneRobert Morris University

“AI/ML Engineer with 4+ years of experience (Capital One, Odin Technologies) and a master’s in Data Analytics (4.0 GPA) who has deployed LLM/RAG systems to production for compliance/risk and document review. Strong in orchestration and MLOps (Airflow, Kubernetes, MLflow, GitHub Actions) and in tackling real-world LLM constraints like latency, context limits, and data privacy, with measurable impact (20%+ manual review reduction; 33% faster release cycles).”

Anomaly DetectionApache HadoopApache HiveApache KafkaApache SparkAWS+115
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VA

Vardhan Addakattu

Screened

Mid-level Data Scientist specializing in Generative AI and NLP for financial risk

Glassboro, NJ4y exp
S&P GlobalRowan University

“Built and shipped production generative AI/RAG assistants in regulated financial contexts (S&P Global), automating compliance-oriented Q&A over earnings reports/filings with grounded answers and citations. Experienced across the full stack—AWS-based ingestion (PySpark/Glue), vector retrieval + LangChain agents, GPT-4/Claude model selection, and production reliability (monitoring, caching, retries) plus rigorous evaluation and regression testing.”

PythonRSQLPySparkPandasApache Spark+111
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