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Vetted A/B Testing Professionals

Pre-screened and vetted.

A/B TestingPythonSQLDockerAWSCI/CD
BJ

Bryan Jewell

Screened

Executive Finance & Operations Leader specializing in consumer subscription growth

Dallas, TX22y exp
FreelanceUniversity of Texas at Austin

“Operations/finance-focused advisor with experience helping early-stage companies build lightweight but effective operating systems—monthly financial reporting, KPI frameworks tied to revenue levers, and forecasting cadences using tools like QuickBooks and Metabase. Has also implemented scalable request-prioritization (Jira) and guided founder/executive org design changes, including transitioning a founder to president while elevating an internal leader to CEO.”

Strategic planningOperations managementBudgetingForecastingBusiness intelligenceA/B testing+58
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HG

Harshavardhan Garikala

Screened

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

NJ, USA4y exp
Red HatOklahoma Christian University

“Red Hat ML/LLM engineer who designed and deployed a production LLM-powered customer support automation system using RAG, improving latency by 30% via PEFT and vector search optimization. Built security and governance into retrieval (access-level filtering, encrypted Pinecone/ChromaDB) and delivered SHAP-based explainability via a dashboard for non-technical stakeholders. Experienced orchestrating distributed ML/RAG pipelines across AWS SageMaker and OpenShift with Airflow/Prefect, plus multi-agent workflows using CrewAI and LangGraph.”

PythonPySparkSQLTensorFlowPyTorchHugging Face+127
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SM

Subhasmita Maharana

Screened

Mid-level Data Scientist specializing in NLP/LLMs, time series forecasting, and MLOps

New York, NY6y exp
CitigroupKent State University

“Data/ML practitioner with hands-on experience building NLP systems from prototype to production: delivered a Twitter sentiment classifier with robust preprocessing, SVM modeling, and Power BI reporting, and built entity-resolution pipelines for messy multi-source customer data (reporting ~95% improvement in unique entity identification). Also implemented semantic linking/search using SBERT embeddings with FAISS vector retrieval and domain fine-tuning (reported ~15% precision lift), and applies production workflow best practices (Airflow/Prefect, Docker, Azure ML/Databricks, Great Expectations).”

A/B TestingApache AirflowAzure Machine LearningBERTCI/CDClustering+170
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JB

Jhansi Bendi

Screened

Senior Software Engineer specializing in cloud-native microservices and event-driven systems

Antioch, CA18y exp
SephoraRashtriya Sanskrit Sansthan

“Senior engineer/tech lead with 18+ years building large-scale distributed applications, specializing in performance and reliability improvements. Recently owned multiple apps on an email personalization team, shipping major optimizations (including a push-update feature and audience-count architecture redesign) that reportedly lifted system performance from ~50% to ~99% while also leading code standards, reviews, and mentoring.”

AngularJSApache KafkaAPI GatewayAzure DevOpsBackend DevelopmentChatGPT+197
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HS

Harmeet Singh

Screened

Senior Game Economy & LiveOps Manager specializing in monetization and progression systems

Remote, Canada9y exp
2KUniversity of Delhi

“Game economy/progression designer for PGA titles who owned equipment and attribute progression plus virtual currency sources/sinks end-to-end. Uses quantitative modeling and telemetry (wallet balances, spending ratios) to tune supply/pricing and hit segment-specific business targets (e.g., conversion and completion-rate goals), and aligns stakeholders via KPI-lift projections and tradeoff-driven presentations.”

A/B testingForecastingData analysisPredictive modelingPythonSQL+54
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RR

Rishitha Reddy Buddala

Screened

Mid-level Full-Stack Developer specializing in cloud-native microservices and event-driven systems

4y exp
Molina HealthcareUniversity at Buffalo

“Software engineer with experience at Molina Healthcare and Target, owning production features end-to-end across backend, data pipelines, and UI. Built an event-driven claims validation system (Python/Java/Spring Boot/Kafka) with strong observability, and shipped embeddings-based semantic product search with evaluation loops (CTR/top-k + human review) and guardrails like keyword-search fallback.”

JavaPythonSQLJavaScriptTypeScriptSpring Boot+121
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SP

Subbu Paravatareddy

Screened

Engineering Leader specializing in cloud modernization and AI/ML integration

Emeryville, CA21y exp
Grocery OutletCalifornia State University, Long Beach

“Player-coach engineering leader focused on buyer/distribution product lines, building scalable purchasing/planning frameworks and modernizing workflows. Drove performance and reliability improvements via queue-based async architectures, external API redundancy, and CI/CD automation, and has led production incident response (cache-related) with follow-up playbooks and monitoring. Experienced in high-growth/startup environments, combining hands-on delivery with mentoring, 1:1s, and performance coaching.”

PythonC#JavaJavaScriptTypeScriptReact+82
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VS

Vaibhav Sharma

Screened

Mid-level Software Engineer specializing in AI/ML and data platforms

Remote, USA5y exp
GoogleIndiana University Bloomington

“AI/ML engineer who built a production agentic system to automate computational research experiments (simulation execution, parameter exploration, and numerical analysis) and mitigated context-window failures using constrained tool-calling/prompt-chaining patterns in LangChain with OpenAI tool-enabled models. Also has adtech/big-data pipeline experience at InMobi, orchestrating Spark jobs in Airflow to filter bot-like user IDs and publish clean IDs to an online NoSQL store for live serving, plus Apache open-source collaboration experience.”

A/B TestingApache AirflowApache HadoopApache HiveApache KafkaApache Spark+100
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JH

Junhui Huang

Screened

Intern Machine Learning Engineer specializing in LLMs, MLOps, and NLP

Providence, RI1y exp
Harvard UniversityBrown University

“Built and deployed a production LLM-driven Dungeons & Dragons game where the model acts as a dungeon master, adding a structured combat system and a macro-state tree to ensure campaigns converge to a clear ending. Fine-tuned Gemini 2.5 Flash on Vertex AI and deployed on GCP with Kubernetes, using RAG over DnD rules/spells plus multi-agent orchestration (intent-based routing between narrative and combat agents) to reduce hallucinations and improve reliability.”

A/B TestingAgileAnalyticsAPI DevelopmentCI/CDChromaDB+109
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MH

Mohammad Husain

Screened

Mid-level Performance Marketing & User Research Specialist in E-commerce growth

Shanghai, China6y exp
TemuUniversity of Toronto

“Growth and creator/affiliate partnerships operator with Temu experience scaling gamified in-app referral/retention loops (Fishland, Lucky Flip). Built relationships with top, sometimes “black-hat,” affiliates via Discord/Reddit, extracted and systematized winning tactics through A/B/multivariate testing, then scaled them through paid channels. Also brings a personal creator network from a student-founded business plus Instagram/TikTok pages totaling 1M+ followers to ramp campaigns quickly and drive strong ROAS.”

Google AdsA/B TestingEmail MarketingDashboardingBusiness DevelopmentGoogle Analytics+69
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JS

Jash Shah

Screened

Mid-level Data Scientist specializing in LLMs, MLOps, and predictive analytics in healthcare and finance

New Jersey, USA4y exp
Johnson & JohnsonStevens Institute of Technology

“Built and deployed a production LLM/RAG clinical decision support system that enables real-time semantic search over unstructured EHR notes and delivers patient risk insights. Strong in healthcare-grade MLOps and compliance (HIPAA, PHI handling, encryption, RBAC, audit logs) and scaled embedding/retrieval pipelines using Spark/Databricks and Airflow. Partnered with clinicians via Power BI dashboards and explainability, contributing to an 18% reduction in patient readmissions.”

A/B TestingAPI IntegrationApache AirflowApache HadoopApache KafkaApache Spark+102
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PC

Pranav Chand

Screened

Senior AI/ML Engineer specializing in Generative AI and LLM platforms

ServiceNow, CA5y exp
ServiceNowCalifornia State University, Fullerton

“Backend engineer focused on multi-tenant enterprise AI personalization and recommendation platforms, combining ML/LLM intent extraction with deterministic policy guardrails for compliance and auditability. Has hands-on AWS experience (ECS/Lambda/DynamoDB/S3) and led a careful DynamoDB single-table migration using dual write/read, canary + feature-flag rollouts, and strong observability/security (JWT/OAuth2, RBAC, Postgres RLS).”

A/B TestingAPI GatewayAudit LoggingAWSAWS IAMAWS Lambda+224
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SM

SUSENDRANATH MUSANI

Screened

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

Connecticut, USA5y exp
PfizerUniversity of New Haven

“Built and deployed an enterprise GenAI knowledge assistant over thousands of internal PDFs/reports using a RAG stack (GPT-4 + Hugging Face embeddings + vector DB) to reduce manual search and SME escalations. Uses LangGraph/LangChain to orchestrate modular agent workflows with relevance filtering and fallback handling, and applies rigorous evaluation (golden datasets, edge cases, A/B tests) with production monitoring metrics.”

A/B TestingAgileApache KafkaApache SparkAWS LambdaBERT+103
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SS

Shouhardik Saha

Screened

Junior Software Engineer specializing in ML, distributed systems, and LLM applications

Austin, TX1y exp
ZondaUC San Diego

“Interned at Zonda where he built an AI-driven semantic search solution over ~280M housing/builder records. Iterated from local LLMs via llama.cpp quantization to a vector-embedding retrieval system, then boosted semantic accuracy with a custom spaCy NER layer and re-ranking, optimizing for latency through precomputation. Collaborated with economics-focused stakeholders to reduce manual document/paperwork time by enabling natural-language search over internal data.”

PythonJavaCC++C#SQL+100
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AS

Aisha Sartaj

Screened

Mid-level AI Engineer specializing in LLM systems, RAG, and MLOps

Remote3y exp
ILMAscentUCLA

“Built an LLM multi-agent “ingredient safety” analyzer for cosmetics that cuts consumer research time from ~20+ minutes to minutes, using LangGraph orchestration, hybrid retrieval (Qdrant + Tavily), and safety-focused critic validation (false rejections reduced ~30%→~8%). Also has research-internship experience building computer-vision pipelines to classify emerald color/clarity by translating gem-expert heuristics into quantitative model features.”

A/B TestingAPI GatewayAWSAWS GlueAWS LambdaCI/CD+118
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KS

Karen Scrivano

Screened

Senior Brand Strategy & Marketing Leader specializing in digital, AI prompting, and customer success

Los Angeles, CA17y exp
Calahan KoomeraNYU

“Marketing/CRM-focused campaign lead with enterprise financial-services rebrand experience, spanning new website and copy creation through national social/digital promotion. Uses Google Analytics and ongoing reporting/QBRs to optimize to KPIs, drive ROI, and successfully retain and upsell clients while expanding reach into new demographics.”

Prompt EngineeringSEOSaaSGoogle AnalyticsSalesforceMicrosoft Excel+84
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HR

Harshavardhan Reddy

Screened

Mid-level AI/ML Data Scientist specializing in NLP, computer vision, and risk analytics

Albany, NY5y exp
Capital OnePace University

“ML/AI engineer with Capital One experience building production-grade customer segmentation and fraud detection systems combining NLP (transformers) and anomaly detection. Strong MLOps and orchestration background (PySpark ETL, MLflow, Airflow, Docker/Kubernetes, Azure ML) with real-time monitoring/alerting and performance optimizations like quantization and caching, plus proven ability to deliver business-facing insights through Power BI/Tableau for marketing stakeholders.”

PythonRSQLPySparkScalaJava+105
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KF

Kevin Fang

Screened

Intern Software Engineer specializing in full-stack and data systems

Beverly Hills, CA1y exp
Alo YogaUC Irvine

“Software developer with healthcare operations experience at Epic Systems (Referrals & Authorizations), delivering customer-facing tooling to speed manual insurance authorization/denial documentation and support future automation. Also supported an HRIS migration to Workday at Aloe Yoga, solving legacy ID interoperability via scripting and mapping, and demonstrates strong production debugging and test-driven maintainability practices.”

Apache HadoopApache KafkaAPI DevelopmentAWSCC#+79
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MS

Min-Han Shih

Screened

Junior Machine Learning Engineer specializing in speech and multimodal AI

Taipei, Taiwan2y exp
FurboUSC

“New grad who has shipped a production vision-language recommendation feature for a pet camera/mobile app, including building a tagged video dataset with human annotators and optimizing inference by FPS downsampling under device compute limits. Also built a multimodal MLLM benchmark using an LLM-as-judge (GPT-5-thinking) with a feedback loop, validated against human scoring, and measured post-feedback quality gains (12% average score improvement).”

PythonCC++MySQLGoApache Spark+61
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MS

Monish Sri Sai Devineni

Screened

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

Boca Raton, FL5y exp
Morgan StanleyFlorida Atlantic University

“AI/ML engineer with experience at Accenture and Morgan Stanley, building production LLM systems (GPT-3 summarization) and finance-focused ML models (credit risk and trading anomaly detection). Combines MLOps depth (Docker/Kubernetes, AWS SageMaker/Glue/Lambda, MLflow, A/B testing, drift monitoring) with practical domain adaptation techniques like few-shot prompting and RAG/knowledge-base integration.”

A/B TestingAnomaly DetectionAPI GatewayAWSAWS GlueAWS Lambda+119
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PK

pavan kalyan padala

Screened

Mid-level Data Scientist specializing in predictive and generative AI

Daytona Beach, Florida4y exp
2725 Hospitality LLCYeshiva University

“AI/ML engineer with production LLM experience in regulated financial services (J.P. Morgan Chase), building a customer response engine to automate first-contact resolution while addressing privacy, bias, compliance, and scale. Strong MLOps/orchestration background (Airflow, Docker/Kubernetes, AWS Step Functions, Azure ML/SageMaker) plus proven ability to integrate with legacy systems and drive stakeholder adoption through dashboards, auditability, and training.”

PythonPandasNumPyScikit-learnTensorFlowPyTorch+98
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SV

Sathwik Varikoti

Screened

Mid-level AI/ML Engineer specializing in Generative AI and Conversational AI

Remote5y exp
InfosysUniversity at Buffalo

“GenAI Engineer at Infosys who built and deployed a production multi-agent RAG system for a top-tier bank, scaling to ~50,000 queries/day with 99.9% uptime. Drove measurable gains (45% accuracy improvement, 30% API cost reduction) through open-source LLM fine-tuning, Pinecone indexing/retrieval optimization, and AWS-based MLOps/monitoring, and has experience enabling adoption via developer workshops and customer-facing collaboration.”

A/B TestingAmazon BedrockAmazon EC2Amazon S3AWS GlueAWS IAM+99
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MT

Mihir Trivedi

Screened

Junior Machine Learning & Quant Research Engineer specializing in low-latency data and trading systems

New York, NY3y exp
Astera HoldingsColumbia University

“Applied ML to physical EV fleet systems at ST Labs, building a real-time CNN-LSTM fault prediction pipeline from streaming vehicle telemetry and addressing live data alignment issues via resampling/interpolation and buffered inference. Also developed a V2G/G2V energy transfer algorithm to automate charging/discharging for profit optimization, and made high-impact low-latency pipeline decisions at Astera Holdings using profiling, replay testing, and live A/B validation.”

AWS GlueBigQueryC++CUDAData CleaningData Engineering+109
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AM

Akshit Modi

Screened

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

Remote, USA5y exp
TempusArizona State University

“Healthcare/clinical ML practitioner who built and productionized ClinicalBERT-based pipelines to extract and standardize oncology EHR data, improving downstream model F1 from 0.81 to 0.92 while controlling training cost via LoRA/QLoRA. Experienced orchestrating real-time AWS ETL/ML workflows (Glue, Lambda, SageMaker) and partnering with clinicians using SHAP-based interpretability, contributing to an 18% reduction in readmissions and full adoption.”

PythonSQLC++JavaNumPyPandas+166
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