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Vetted Tableau Professionals

Pre-screened and vetted.

TableauPythonSQLPower BIDockerAWS
MA

Malek Ahmad

Senior Full-Stack Python Developer specializing in Django, FastAPI, and cloud platforms

Matamoras, Pennsylvania9y exp
Weston Chase
PythonDjangoFlaskFastAPITypeScriptNode.js+53
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SK

sachin keerthi

Senior Full-Stack Developer specializing in cloud-native FinTech microservices and React

Chicago, Illinois11y exp
Capital One
JavaJavaScriptTypeScriptSassTailwind CSSReact+199
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ST

Swathi Tallapally

Senior AI/ML Engineer specializing in Generative AI, LLMs, and RAG systems

7y exp
CVS Health
A/B TestingApache HadoopApache KafkaApache SparkAzure DevOpsAzure Functions+125
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SD

Shirisha Dasarraju

Senior Data Scientist specializing in NLP, MLOps, and cloud ML platforms

Westfield Center, OH7y exp
Westfield Insurance
PythonSQLTableauMachine LearningArtificial IntelligenceSentiment Analysis+150
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HS

Hari Sai Nuthalapati

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

Dallas, TX4y exp
Baylor Scott & White
Amazon DynamoDBAmazon EC2Amazon ECSAmazon RDSAmazon S3Angular+90
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AW

Alison Wilson

Executive Chief of Staff & Investor Relations leader specializing in VC and technology ventures

New York, NY8y exp
Freelance
Go-to-market strategyProgram managementProject managementBudgetingStakeholder managementMarket research+84
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KR

Krithika Reddy

Senior AI Python Engineer specializing in Generative AI and MLOps

San Francisco, CA8y exp
Silicon Valley Bank
A/B TestingAmazon BedrockAmazon EC2Amazon RDSAmazon S3Amazon SageMaker+158
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KP

Kamilah Patterson

Screened ReferencesModerate rec.

Senior HR Business Partner specializing in talent strategy and workforce analytics

Brooklyn, New York11y exp
GroupMBerkeley College

“HR Business Partner with GroupM experience supporting multiple mergers, building and transitioning Analytics/Programmatic/Account Management teams through hands-on job architecture, benchmarking, and performance management. Uses HR analytics (including an Excel-based retention model with visual reporting) and cross-functional partnership with IT to reduce disruption and improve retention during restructuring and major policy changes like return-to-office.”

Workforce PlanningData AnalyticsPower BIForecastingPredictive ModelingMachine Learning+137
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RG

Rama Gowtham Reddy Padala

Screened

Mid-level Python Developer specializing in APIs, data engineering, and cloud-native systems

Remote, USA4y exp
Marsh McLennanFlorida Atlantic University

“Backend engineer (Marsh McLennan) who evolved a high-volume claims automation pipeline in Python, emphasizing thin APIs with background job processing, strong validation/retries, and production-grade observability. Experienced in secure FastAPI API design (centralized JWT/RBAC), multi-tenant Postgres/Supabase-style row-level security, and low-risk refactors using parallel runs and feature flags; targeting founding-engineer scope roles.”

PythonFlaskDjangoFastAPIScalaGo+127
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SA

Sanveed Adnan Qureshi

Screened

Senior Marketing Analytics & Operations Analyst specializing in performance marketing and BI

Albert Lea, MN4y exp
InnovancePurdue University

“Paid media/demand gen marketer who owned a $50K/month multi-brand budget (five business units) across Google Ads and LinkedIn Ads. Ran structured A/B tests and made fast budget reallocations based on benchmarks (CTR/CPL/lead quality), and diagnoses performance declines via funnel and saturation analysis (frequency/overlap) to stabilize CPAs and restore volume.”

Power BITableauMicrosoft ExcelRPythonSQL+134
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CH

Chris Harry Patrick

Screened

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

Milwaukee, WI3y exp
UnitedHealth GroupUniversity of Wisconsin–Milwaukee

“Robotics software engineer who built a ROS Noetic-based perception-to-control stack for a pick-and-place robotic arm, integrating OpenCV/TensorFlow vision with motion planning and PID tuning. Demonstrated strong real-time debugging skills (rosbag, queue/latency fixes) and experience deploying reproducible robotics environments with Gazebo simulation, Docker, and GitLab CI.”

PythonSQLPandasNumPyScikit-learnClassification+103
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VJ

Vedang Jadhav

Screened

Mid-Level Software Engineer specializing in cloud-native microservices on AWS

New York City, NY5y exp
CitigroupIndiana University Bloomington

“Backend engineer with experience across healthcare and fintech platforms (Anthem, Citia) building high-throughput Python microservices with strong compliance/security focus (HIPAA, tenant isolation). Has integrated ML workflows into production systems (ResNet embedding-based image similarity) using async pipelines (Celery/Redis) and AWS (Lambda/S3/ECS), delivering measurable performance and fraud/content-integrity improvements at scale.”

PythonJavaJavaScriptTypeScriptC++SQL+116
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JB

JaswanthRaj Bantu Aindla

Screened

Mid-level Python Developer specializing in cloud-native microservices for FinTech and Insurance

Charlotte, NC6y exp
Wells FargoUniversity of Bridgeport

“Backend/data engineer who has maintained high-traffic FastAPI microservices and delivered a hybrid AWS serverless+containers platform using Terraform and GitHub Actions, with secrets managed via Secrets Manager/SSM. Also led modernization of a mission-critical 10,000+ line SAS financial reporting engine into Python microservices and built AWS Glue ETL pipelines feeding a centralized data lake.”

PythonJavaJavaScriptTypeScriptSQLShell Scripting+115
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PK

Pravallika Kilari

Screened

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

USA5y exp
CVS HealthUniversity of Houston

“AI/ML engineer with CVS Health experience deploying production LLM systems in regulated healthcare settings, including a large-scale RAG solution (1M+ documents) built for compliance-grade, auditable policy/regulatory Q&A with strong anti-hallucination controls. Also delivered an NLP summarization system for physician notes/case narratives by partnering closely with non-technical care operations stakeholders and iterating via prototypes, dashboards, and feedback loops.”

Anomaly DetectionAWSAWS LambdaAzure Machine LearningBERTCI/CD+128
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VN

Venkatesh Nagubandi

Screened

Mid-level Software Engineer specializing in ML, LLM apps, and cloud data systems

Tracy, California4y exp
GeneaUC Santa Cruz

“Built a production SQL chatbot for access-log analytics that replaced manual custom report requests with natural-language querying, using LangGraph and a ChromaDB-backed RAG pipeline for grounded, consistent answers. Implemented a privacy-preserving design where the LLM never sees raw customer data (only query metadata) and has experience building multi-agent/tool-calling systems with LangGraph (DeepAgents), including solving sub-agent communication drift via self-reflection.”

PythonJavaJavaScriptRPyTorchTensorFlow+84
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CC

Chandan Chalumuri

Screened

Mid-level Data Scientist specializing in ML, NLP, and Generative AI

Tempe, AZ4y exp
MetLifeArizona State University

“Data engineering / ML practitioner with experience at MetLife building transformer-based sentiment analysis over large unstructured datasets and productionizing pipelines with Airflow/PySpark/Hadoop (reported 52% efficiency gain). Also implemented embedding-based semantic search using Pinecone/Weaviate to improve retrieval relevance and enable RAG for customer support and document matching use cases.”

A/B TestingAgileApache AirflowApache HadoopApache KafkaApache Spark+170
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GS

GOWRI SHANKAR ANANTHULA

Screened

Mid-level Data Scientist & Generative AI Engineer specializing in LLMs and RAG

Auburn Hills, MI4y exp
StellantisUniversity of Cincinnati

“ML/NLP practitioner who built a retrieval-augmented generation (RAG) system for large financial and operational document sets using Sentence-Transformers (all-mpnet-base-v2) and a vector DB (e.g., Pinecone), with a strong focus on retrieval evaluation and chunking strategy optimization. Experienced in entity resolution (rules + embedding similarity with type-specific thresholds) and in productionizing scalable Python data workflows using Airflow/Dagster and Spark.”

PythonSQLRPandasNumPySciPy+177
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PY

Paige Yang

Screened

Mid-level Product Marketing & Growth PM specializing in eCommerce and GenAI business cases

New Castle, DE5y exp
WatersBoston University
A/B TestingAsanaContent StrategyData AnalysisDigital MarketingE-commerce+43
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SR

Sharanya Rao

Screened

Mid-level AI/ML Engineer specializing in NLP, LLMs, and RAG for finance and healthcare

Remote, USA3y exp
Ally FinancialUniversity of Maryland, Baltimore County

“Built an AI lending assistant (RAG + DeBERTa) used by credit analysts to retrieve policies and past loan decisions, tackling real production issues like hallucinations, document quality, and sub-second latency. Deployed a modular, Dockerized AWS architecture (ECS/EMR + load balancer) with load testing, caching/precomputed embeddings, and CloudWatch monitoring, and used Airflow to automate scheduled data/embedding/vector DB refresh pipelines with retries and alerts.”

PythonPySparkSQLPandasNumPyScikit-learn+133
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LL

Lenny Lin

Screened

Junior Full-Stack Software Engineer specializing in web apps, cloud infrastructure, and ML

Champaign, IL2y exp
University of IllinoisUniversity of Illinois Urbana-Champaign

“Built and owned a hackathon project (Gritto) with a Python/FastAPI backend that routes user text through a sequence of Gemini agents to produce structured JSON outputs. Has hands-on production deployment experience using Docker/Docker Compose, GitHub Actions CI/CD, AWS App Runner, MongoDB, and secrets management (Doppler + migration to AWS Secrets Manager), plus implemented a chat-like experience via multiple HTTP requests when SSE wasn’t viable.”

A/B TestingAPI IntegrationAWSAWS LambdaBERTCI/CD+103
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IG

Ishwar Girase

Screened

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

Hampton, NJ6y exp
UnumUniversity of Texas at Dallas

“AI/ML Engineer who built a production RAG-based LLM system for insurance policy documents, turning thousands of messy PDFs into a searchable index using LangChain, Azure AI Search vectors, hybrid retrieval, and FastAPI. Strong focus on evaluation (MRR/precision@k/recall@k, REGAS) and performance optimization (vLLM), with prior clinical NLP experience using BERT-based NER validated on ground-truth datasets.”

A/B TestingAWSAWS LambdaBERTBusiness IntelligenceC+++169
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RP

Ruudra Patel

Screened

Junior Data Scientist specializing in ML, LLMs, and RAG applications

Atlanta, GA3y exp
Georgia State UniversityGeorgia State University

“University hackathon finalist (2nd place) who built CareerSpark, a production-style multi-agent career guidance app in 24 hours using a hierarchical debate architecture with a moderator/judge agent. Has startup internship experience at LiveSpheres AI using LangChain for multi-LLM orchestration, and demonstrates a structured approach to testing/evaluation (golden sets, integration sims, latency/accuracy KPIs) plus strong non-technical stakeholder communication.”

PythonSQLRJavaJavaScriptReact+112
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AR

Anvesh Reddy Narra

Screened

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

3y exp
State FarmCleveland State University

“Built a secure, on-prem/private GPT assistant to replace manual SharePoint-style search across thousands of policies/SOPs/engineering docs, using a production RAG stack (LangChain/LangGraph, FAISS/Chroma, PyMuPDF+OCR, vLLM). Implemented layout-aware ingestion (including table-to-JSON) and a multi-agent retrieval/generation/verification workflow with strong observability and compliance guardrails, delivering ~70% reduction in search time.”

Anomaly DetectionAnsibleApache KafkaApache SparkAWSBERT+184
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AM

Ankita Mungalpara

Screened

Mid-level Data Scientist specializing in Generative AI and multimodal systems

Irving, TX5y exp
University of Massachusetts DartmouthUniversity of Massachusetts Dartmouth

“Recent J&J intern who built a conversational RAG agent and led a shift from a monolithic model to a modular RAG workflow, cutting response time from several days to under a second by tackling data fragmentation, context retention, and embedding/latency optimization. Also worked on a large (7B-parameter) multimodal VQA pipeline for healthcare research and stays current via NeurIPS/ICLR and open-source contributions.”

A/B TestingAmazon BedrockAmazon EC2Amazon RDSAmazon RedshiftAmazon S3+154
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