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Vetted R Professionals

Pre-screened and vetted.

RPythonSQLDockerAWSTensorFlow
SP

Sneha Patil

Screened

Mid-level Financial Analyst specializing in FP&A, forecasting, and regulatory reporting

New York, NY5y exp
JPMorgan ChaseUniversity of Texas at Arlington

“Backend-focused software engineer (4+ years) across e-commerce, banking, and healthcare who owned mission-critical checkout/order management end-to-end and improved peak-traffic success rates via resiliency patterns (timeouts/retries/caching) and data-driven iteration. Also built and shipped real-time operational dashboards (React/TypeScript + Spring Boot) using WebSockets and event-stream integrations, with strong experience in Kafka/RabbitMQ-style messaging at scale.”

ForecastingBudgetingRisk ManagementPredictive AnalyticsData AnalysisData Visualization+81
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SS

Sumanth Salluri

Screened

Mid-level Business Data Analyst specializing in Financial Services and Healthcare analytics

USA4y exp
VisaGeorge Mason University

“Full-stack engineer (~4 years) who has owned and shipped customer-facing SaaS onboarding and a role-based real-time analytics dashboard using TypeScript/React with a modular backend. Experienced in microservices with RabbitMQ and strong observability practices (correlation IDs, structured logging, queue metrics), and built an internal deployment tracker integrated with CI/CD that replaced manual spreadsheet/Slack processes.”

PythonSQLRHTMLCSSJavaScript+118
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VS

Venkata Sai Pavan Dema

Screened

Mid-level Data Scientist/ML Engineer specializing in GenAI agents and MLOps

5y exp
Capital OneUniversity of the Cumberlands

“AI/LLM engineer at Capital One who deployed a production RAG-powered fraud analysis and document intelligence platform using LangChain, OpenAI, Pinecone, Kafka, and AWS. Focused on reliability in real-time investigations via hybrid retrieval, schema-validated outputs, and LLM verification loops, reporting review-time reduction from hours to minutes and ~99% fraud detection precision.”

A/B TestingAmazon EC2Amazon RedshiftAmazon S3Amazon SageMakerAzure App Service+163
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JJ

John Joji Melel

Screened

Intern Generative AI Engineer specializing in RAG and multi-agent systems

Chicago, IL2y exp
NeuraFlashUniversity of Chicago

“Built and deployed a production RAG-based multi-agent chatbot during an internship to help consultants answer client questions and guide users through new IT systems with step-by-step instructions. Demonstrates hands-on experience with LangGraph/LangChain/Google ADK, unstructured document parsing and chunking for RAG, and a reliability-first approach to agent workflows (metrics, fallbacks, human-in-the-loop, guardrails).”

PythonSQLRC++KubernetesDocker+87
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NV

Nikita Vivek Kolhe

Screened

Junior Data & Machine Learning Engineer specializing in MLOps and NLP

Los Angeles, United States1y exp
WorkUpUSC

“ML/LLM practitioner with production experience building a healthcare review sentiment pipeline (RateMDs) using Hugging Face Transformers plus a LangChain+FAISS RAG layer for interactive querying. Also led orchestration-driven optimization of Nike’s Fusion ETL pipeline, improving runtime efficiency by 20%, and has experience translating ML outputs into Tableau dashboards for non-technical healthcare stakeholders (e.g., readmission risk).”

PythonSQLCC++RMATLAB+90
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NM

Nathan Moore

Screened

Principal Architect specializing in SRE, DevOps, and large-scale cloud/CDN platforms

Dallas, Texas14y exp
Inertia LabsUCLA

“Engineering leader who drove the conception, PRD, architecture, and delivery of MaxCDN’s next-generation CDN platform ("E2"), including control plane work, hardware deployment planning, and observability/billing data processing. Also built Krypton Labs’ engineering team from the first hires, using a flat Agile structure and emphasizing constructive conflict, strong documentation, and remote-team accountability.”

AgileAmazon EKSBashData EngineeringData ModelingDevOps+84
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SD

Sai Dinesh Pusapati

Screened

Senior AI/ML Engineer specializing in GenAI agents and LLM workflows

San Francisco, CA6y exp
Scale AIBelhaven University

“LLM/AI engineer with production experience building a retrieval-based document intelligence system that extracts information from PDFs/emails, backed by Python + Spark pipelines. Focused on reliability and cost/latency optimization (caching, batch processing) and has hands-on orchestration experience with Airflow (sensors, retries, alerts). Also partnered with business stakeholders to deliver customer feedback classification/summarization for faster sentiment insights.”

PythonTypeScriptJavaC#JavaScriptR+103
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KL

Kevin Lim

Screened

Intern Software Engineer specializing in data science and machine learning

Remote2y exp
StylistGemUC Berkeley

“Backend engineer with hands-on experience building Flask REST APIs (auth, CRUD, S3 media uploads) and driving measurable Postgres/SQLAlchemy performance gains (p95 reduced to 200–400ms by eliminating N+1s and switching to keyset pagination). Implemented multi-tenant isolation with strict tenant scoping plus Postgres RLS, and built an OpenAI-powered quiz generation pipeline using queued workers, structured JSON outputs, and Celery/Redis optimizations to stabilize high-throughput workloads.”

API DevelopmentAWSAzure FunctionsCI/CDCloud ComputingCSS+108
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VP

Vasudha Prerepa

Screened

Mid-Level Java Full-Stack Developer specializing in cloud-native microservices

5y exp
BMOTexas Tech University

“QA/validation-focused engineer with experience at Meta testing an ML+LLM content classification/summarization system, including production-vs-test behavior gaps. Built automated E2E validation and drift monitoring (PSI, KL divergence, embedding cosine similarity) run daily/multiple times per day and gated via CI. Also implemented Jenkins-orchestrated Selenium/API test suites in Docker at Capgemini and partnered with a business analyst to convert business rules into automated AI-driven validation checks.”

AJAXApache KafkaApache TomcatAWSAWS CloudFormationAWS Glue+141
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JA

Jeevan aher

Screened

Junior AI Engineer specializing in fraud detection, credit risk, and LLMs in FinTech

Remote, USA3y exp
JPMorgan ChaseUniversity of Illinois Urbana-Champaign

“AI engineer with production experience building a high-accuracy (98%) fraud detection system operating at real-time latency (1–2s) over millions of transactions, using a multi-model pipeline approach to meet performance constraints. Also implemented Airflow-orchestrated workflows (DAGs, retries, alerts) to replace brittle cron scripts and is currently pursuing a master’s project on real-time ASL-to-text conversion.”

PythonRSQLJavaScriptBashC+107
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WM

Will McEntee

Screened

Mid-level Operations & Analytics Professional specializing in logistics and sports data

Anaheim, CA4y exp
AmazonGeorgetown University

“Lifelong basketball player with extensive exposure to elite Southern California high school basketball (Servite/Trinity League) and familiarity with college recruiting through close connections, who applies a structured PFF-style evaluation lens to scouting. Comfortable identifying talent via film and in-person viewing and proactively engaging prospects through social media outreach; also brings experience working demanding overnight/on-call schedules from Amazon last-mile logistics.”

Microsoft ExcelPower BISalesforceSQLPythonR+52
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SR

Sandeep Reddy Karumudi

Screened

Mid-level Data & Business Analyst specializing in analytics engineering and BI

6y exp
AdobeUniversity of Wisconsin–Madison

“Data/analytics professional with experience across manufacturing and enterprise environments (Wisconsin School of Business project with CNH Industrial; roles/projects at Ascensia Technologies, S&C, and Adobe). Has hands-on work combining warranty/lifecycle tables with technician free-text notes using TF-IDF + tree models (XGBoost/Random Forest), and deep experience in entity resolution/reconciliation across mismatched financial systems using Python/SQL and fuzzy matching, with production-grade pipeline practices in Azure Data Factory/Databricks.”

PythonPandasNumPyscikit-learnRSQL+119
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CS

Cassandra Sullivan

Screened

Intern Data Scientist specializing in generative AI and forecasting

San Francisco, CA5y exp
Aurora AIUniversity of Chicago

“ML/NLP practitioner working across healthcare and business/finance use cases: currently fine-tuning a domain-specific Llama 3.1 model for safe reasoning over EHRs/clinical notes using RAG + RL/DPO and RAGAS-based evaluation. Has built UMLS-driven entity normalization pipelines with quantified quality gains and developed embedding/vector-DB systems (FAISS) for semantic matching and forecasting/recommendation applications at Aurora AI and Banxico.”

A/B TestingAutomationClassificationDashboardingData CleaningData Visualization+109
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MK

Matthew Konieczka

Screened

Director-level Data & Analytics leader specializing in BI, Salesforce analytics, and go-to-market growth

Miami, FL19y exp
AccentureUniversity of Wisconsin

“Founder of an algorithmic trading startup who reports raising $25M+ over roughly the last three years. Has spent several years working closely with VC funds, focusing on fundraising and lead generation with VC/PE firms, and is strongly committed to entrepreneurship and scaling new technologies.”

Cross-Functional CollaborationLeadershipData GovernanceBudget ManagementBusiness DevelopmentGo-to-Market Strategy+67
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ML

Michelle Lu

Screened

Senior Customer Success Manager specializing in B2B SaaS retention and expansion

Pleasanton, CA8y exp
GartnerUniversity of Texas at Austin

“Enterprise CSM with martech/market-intelligence background (Pulse and Gartner context) who owns accounts end-to-end from onboarding through renewal and expansion. Known for executive-level value narratives (e.g., CPO using benchmarks in a board deck), multi-threading across Product and Legal, and using usage/segmentation analytics plus activation tactics (A/B testing, targeted messaging) to drive adoption and renewals.”

OnboardingAccount ManagementData AnalysisProject ManagementSalesforceAsana+55
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NK

Nolan Knight

Screened

Junior Robotics Engineer specializing in ROS 2, computer vision, and automation

Evanston, IL1y exp
GM DiecronNorthwestern University

“MSR robotics candidate who led a 4-person project building a ROS2 MoveIt wrapper for a Franka Emika arm and integrating a RealSense-based vision pipeline for color-based object tracking/sorting. Also building a quadruped with ROS on Raspberry Pi, bridging ROS commands through a motor driver to TTL-controlled motors, and expanding from Python ROS development into C++ for navigation/LiDAR/SLAM work on TurtleBot3.”

PythonCC++RMATLABSQL+83
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LK

Lekha Karanam

Screened

Mid-level AI/Analytics Product & Data Professional specializing in LLM and dashboard automation

Dallas, TX3y exp
Goldman SachsUniversity of Texas at Dallas

“Built and shipped open-source LLM/RAG systems, including a generative AI assistant grounded on ~30,000 scraped university web pages, improving response accuracy ~30% by moving from TF-IDF-only retrieval to a hybrid sentence-transformer approach with fallback controls. Also partnered with non-technical leadership at Securi.ai to deliver real-time predictive analytics dashboards (Elasticsearch + Jira/ServiceNow) that reduced project overhead by 18%.”

PythonSQLRScikit-learnTensorFlowPyTorch+61
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SV

Skanda Vyas Srinivasan

Screened

Intern Software Engineer specializing in full-stack, ML, and optimization

New York, NY0y exp
GeminiUniversity of Wisconsin–Madison

“Built a production-style PyTorch LSTM system that generates structured piano compositions from 1200+ MIDI files, then significantly improved long-range musical coherence by implementing Bahdanau attention based on research literature. Also has internship experience using Docker Compose for containerized backend workloads and has independently used Ray to scale ML experiments across multiple GPUs, including dealing with GPU scheduling/memory oversubscription issues.”

AlgorithmsAngularBashCC#C+++104
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SS

Sriprasanna Sharma

Screened

Executive IT Leader specializing in enterprise architecture, cloud modernization, and AI transformation

Los Angeles, CA25y exp
Tokio Marine HCCUC Davis

“Enterprise Architecture leader with insurance domain experience (Farmers Insurance) who drove a multi-phase roadmap to modernize a siloed CRM landscape—migrating from legacy Siebel to Salesforce Financial Services Cloud with Customer 360, MDM, and omnichannel capabilities. Also led a high-impact architecture decision to implement offline billing to reduce customer-facing downtime, including complex SAP/on-prem-to-cloud integration and transaction sync.”

AWSChange ManagementContract NegotiationCost OptimizationDevOpsETL+128
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VS

vamshi saggurthi

Screened

Mid-Level Software Engineer specializing in LLM agents and real-time data streaming

8y exp
AmazonRutgers University–New Brunswick

“Software engineer with experience at Striim and Amazon who ships end-to-end production systems across UI, backend, ML, and operations. Built a real-time PII detection capability for a streaming data platform by integrating Python ML inference into a Java monolith via gRPC sidecars, achieving ~3M events/hour throughput and ~93% accuracy, and helped drive enterprise adoption (Fiserv, CVS). Also modernized internal Amazon tooling for multi-region scale with modularization and fully automated deployments.”

PythonJavaRJavaScriptApache AirflowApache Kafka+110
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DZ

David Zeibert

Screened

Junior Development Analytics Analyst specializing in QSR growth and automation

Miami, FL3y exp
Burger KingStanford University

“Data-driven economy/incentives designer with experience across QSR brands (Popeyes and Burger King), spanning franchise development incentive systems and in-app game economies. Built live scorecards (Snowflake/SQL/Tableau) and regression-based sales forecasting models on thousands of restaurant records, and used app telemetry to tune progression loops and improve retention while aligning ops and business KPIs.”

SQLPythonRTableauPower BIMicrosoft Excel+51
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MI

Moses Immanuel

Screened

Mid-level Data Scientist specializing in machine learning and big data analytics

Bentonville, AR6y exp
WalmartUniversity of North Texas

“Walmart engineer who built and shipped a production LLM+RAG system to automate triage and analysis of computer support chats/tickets, producing grounded, schema-constrained JSON outputs for summaries, urgency, and routing recommendations. Emphasizes reliability (hallucination control, confidence thresholds, human-in-the-loop) and runs end-to-end pipelines with Airflow and AWS-native orchestration, plus rigorous evaluation and monitoring tied to business KPIs.”

AgileAmazon EC2Amazon EMRAmazon RedshiftAmazon S3Apache Hadoop+172
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AN

Apoorva Nanabolu

Screened

Senior Data Scientist / Generative AI Engineer specializing in fraud, risk, and MLOps

5y exp
PayPalUniversity of New Haven

“Built and deployed a production LLM/RAG fraud investigation system to replace manual investigator workflows, combining transaction data, historical cases, and policy documents with agent-style steps and LoRA fine-tuning. Demonstrates strong reliability engineering (grounding, citations, abstention paths), performance optimization (retrieval/indexing/caching), and end-to-end MLOps orchestration using Azure ML Pipelines/MLflow plus Kubernetes/Argo with canary and rollback deployments.”

PythonRSQLNoSQLSnowflakeBigQuery+178
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