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Vetted A/B Testing Professionals

Pre-screened and vetted.

A/B TestingPythonSQLDockerAWSCI/CD
LJ

Lokesh Jain

Screened

Senior Data Engineer specializing in cloud data platforms and ML pipelines

5y exp
WayfairUniversity at Buffalo

“Built and deployed AcademiQ Ai, a production LLM-based teaching assistant using GPT/BERT with RAG (LangChain + Pinecone) to handle large student notes and generate adaptive explanations/quizzes. Demonstrated measurable retrieval-quality gains (18% precision improvement, 22% less irrelevant context) by tuning similarity thresholds and chunking based on user satisfaction signals. Also orchestrated terabyte-scale, real-time demand forecasting pipelines using Airflow and Kubeflow on GCP with strong monitoring, shadow deployment, and feedback-loop practices.”

A/B TestingAgileAngularApache HadoopApache KafkaAWS+91
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AV

Abhinav Vengala

Screened

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.”

PythonNumPyPandasSciPyPyTorchTensorFlow+116
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AK

Ajay Kumar Devireddy

Screened

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.”

A/B TestingAgileApache AirflowApache KafkaApache SparkAudit Logging+134
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MD

Mukesh Dontaraboina

Screened

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.”

PythonCC++JavaJavaScriptTypeScript+154
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OR

OBUL REDDY LEKKALA

Screened

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.”

A/B TestingAmazon CloudWatchAnomaly DetectionAWSAWS CodePipelineAWS Glue+124
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SS

Sameer Shaik

Screened

Senior AI Engineer specializing in Generative AI, NLP, and applied deep learning

Chicago, IL8y exp
Live NationDePaul University

“Built a production multi-agent LLM system at Live Nation on Databricks (LangGraph/LangChain) that let venue/event teams ask questions in Slack, auto-generated optimized route schedules, and produced inventory/stocking recommendations from historical SQL data and venue trends. Improved reliability by tightening prompts with strict JSON schemas, providing sample questions/SQL, and adding guardrails plus synthetic/edge-case testing, while iterating with event managers and senior VPs via prototypes and feedback loops.”

A/B TestingAzure Blob StorageAzure FunctionsCI/CDClassificationClustering+143
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LK

Lowell Kelly-Gamble

Screened

Mid-level Sales Development & Business Development professional in Enterprise SaaS and AI

New York City Metropolitan Area, NY5y exp
LightricksMonmouth University

“Outbound-focused full-cycle seller with 5 years across cloud (IaaS/PaaS/SaaS), cybersecurity, data/DR, and fintech solutions. Built and owned a trigger-based, multi-channel outbound motion leveraging buying signals (funding/hiring/leadership changes) that lifted meetings by 42% and generated 60%+ of team outbound pipeline, later adopted across the team.”

Business developmentCRMNegotiationSalesforceLead generationHubSpot+65
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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.”

A/B TestingAmazon KinesisAmazon RedshiftAmazon S3AutomationAWS+136
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TN

Tejaswini Narayana

Screened

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%.”

SDLCAgileWaterfallPythonCC+++149
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DK

David Kim

Screened

Director-level Brand & Marketing Leader specializing in luxury, lifestyle, and omnichannel growth

Brea, California18y exp
FLEXFITSangmyung University

“Brand and growth marketing leader who helped launch Gentle Monster USA and evolve the brand from offline-centric to a digital-first global expansion engine, delivering 126% sales growth and a more diversified customer base. Also drove a strategic pivot at legacy B2B manufacturer Flexfit—expanding channels (LinkedIn/Reddit), implementing ingredient branding, and scaling inquiries from ~5.5k to 17k+ annually through multi-audience campaigns and improved tracking/registration flows.”

Go-to-market strategyE-commerceCRMCross-functional leadershipLead generationVendor management+92
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SV

Surya Vamshi Sriperambudooru

Screened

Mid-level AI Engineer specializing in healthcare claims analytics and RAG copilots

Remote, US4y exp
CodoxoUniversity of Texas at Dallas

“Built a production "appeals co-pilot" for a healthcare claims appeals team, combining an XGBoost/logistic ranking model with a Python/LangChain RAG stack (FAISS + Mistral 7B) to surface high-probability appeal wins and speed policy-grounded drafting. Emphasizes reliability and trust: hybrid retrieval with metadata routing, citation/eval scripts, guardrails, and an explainability layer that non-technical stakeholders could understand and override.”

A/B TestingAmazon EC2Apache AirflowApache KafkaAWSConfluence+118
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VN

Vasanthi N.

Screened

Senior AI/ML Engineer and Data Scientist specializing in Generative AI and MLOps

Los Angeles, CA9y exp
Pacific Community BankAurora University

“ML/NLP practitioner focused on financial-services document intelligence and compliance workflows—built an end-to-end pipeline to classify documents and extract financial entities from loan applications, emails, and statements stored in S3/internal databases. Strong in entity resolution/record linkage and in productionizing pipelines with GitHub Actions CI/CD, testing, data validation, and Docker, plus semantic search using OpenAI embeddings and a vector database.”

A/B TestingAgileAnomaly DetectionAPI IntegrationAWSAWS Glue+137
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YT

Yash Tobre

Screened

Mid-level AI/ML Engineer specializing in computer vision, NLP/LLMs, and MLOps

Bentonville, AR4y exp
DyneticsUniversity of Texas at Arlington

“ML/AI engineer with defense and commercial analytics experience: deployed a real-time aerial object detection system at Dynetics (YOLOv5 + TorchServe in Docker on AWS EC2) with drift-triggered retraining and 99.5% uptime, tackling ambiguous targets and weather degradation. Previously at Fractal Analytics, built and explained a churn prediction model for marketing stakeholders using SHAP and delivered it via a Flask API into dashboards, driving a reported 22% attrition reduction.”

PythonMATLABSQLPyTorchTensorFlowKeras+98
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HK

Hinal Kuvadiya

Screened

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.”

A/B TestingApache AirflowApache SparkAWS GlueAWS LambdaBusiness Intelligence+118
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KE

Kainoa Eastlack

Screened

Senior Data Scientist specializing in NLP and explainable machine learning

8y exp
Miro HealthRensselaer Polytechnic Institute

“NLP/ML practitioner who built an explainable, clinician-aligned system to detect cognitive decline (Alzheimer’s/stroke-related) from audio responses, achieving 97% accuracy on only a few hundred data points. Also has experience with healthcare claims entity resolution and prototyped a word2vec-based patent search vector database in Elasticsearch, with strong emphasis on testing, interpretability, and scalable Python data workflows.”

PythonSQLPostgreSQLJavaPandasNumPy+66
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KO

Karthik O

Screened

Mid-level AI Software Engineer specializing in LLM systems and cloud APIs

Kansas, USA3y exp
DeloitteUniversity of Central Missouri

“Built and productionized an LLM-powered support/knowledge pipeline using embeddings and retrieval (RAG) to deliver more grounded, higher-quality responses while reducing manual effort. Focused on real-world reliability and performance—adding structured validation/guardrails, optimizing vector search and context size for latency/scale, and monitoring failure patterns in production. Experienced with orchestration via LangChain for LLM workflows and Airflow for production data/ML pipelines, and iterates closely with operations stakeholders through demos and feedback.”

PythonJavaScriptTypeScriptJavaSQLGit+112
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JM

Jani Miya Shaik

Screened

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.”

A/B TestingAnomaly DetectionApache KafkaAWSAWS LambdaAzure Kubernetes Service+87
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GP

Ganesh Pittala

Screened

Senior Software Engineer specializing in distributed systems and cloud-native platforms

New York, USA5y exp
WalmartBinghamton University

“Backend-leaning full-stack engineer with experience at Walmart, Qualtrics, and American Express, shipping secure partner-facing API platforms and internal monitoring dashboards. Strong in AWS production operations (ECS/Fargate, RDS/Postgres, CloudWatch) plus rigorous testing/security practices, with measurable delivery and performance improvements (35% faster releases; ~30–40% latency reductions).”

A/B TestingAgileAlgorithmsAmazon CloudWatchAmazon DynamoDBAmazon EC2+177
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VW

Van Wang

Senior Product Designer specializing in B2B SaaS, marketplaces, and recruiting platforms

Taipei, Taiwan4y exp
SabbaticalAcademy of Art University
A/B TestingAgileCross-Functional CollaborationDesign SystemsFigmaMacOS+47
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DL

Damien Lawson

Principal Digital Marketing & Web Analytics Strategist specializing in paid media and CRO

Houston, TX20y exp
HPEUniversity of Houston-Downtown
Time managementMicrosoft OfficeSalesforceGoogle AnalyticsA/B testingLead generation+102
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SK

Saliqua Kiran

Junior Product & Full-Stack Engineer specializing in AI and analytics automation

San Francisco, CA2y exp
Minerva UniversityMinerva University
PythonFlaskFastAPIJavaScriptReactNode.js+89
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KC

Kevin Chu

Mid-level Lifecycle Marketing Specialist specializing in retention and marketing automation

Los Angeles, CA8y exp
Mammoth DistributionUC San Diego
Email MarketingCampaign ManagementData AnalysisA/B TestingProject ManagementCross-Functional Collaboration+46
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AP

Abhishek Phaltankar

Junior NLP/ML Engineer specializing in LLM fine-tuning and long-context biomedical NLP

2y exp
CapgeminiUniversity of Massachusetts Amherst
PythonRCC++SQLJava+70
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CF

Chrispin Flores

Director-level Video Game QA Leader specializing in PC/console release and live service testing

Corpus Christi, TX14y exp
Dynasty StudiosFull Sail University
A/B TestingC++ConfluenceJenkinsJiraPython+57
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