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Vetted Data Validation Professionals

Pre-screened and vetted.

Data ValidationPythonSQLCI/CDDockerAWS
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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SE

Siddhanth Erramaraju

Screened

Junior Full-Stack Developer specializing in MERN and AWS

Birmingham, AL3y exp
JPMorgan ChaseUniversity of Alabama at Birmingham

“Backend engineer focused on Python/Flask APIs and cloud-native delivery: builds stateless services with JWT auth, validation, and scalable deployment on Kubernetes using a GitOps workflow (ArgoCD-style) with easy rollbacks. Has also implemented Kafka-based real-time event pipelines and supported phased hybrid cloud/on-prem migrations with parallel runs and controlled cutovers.”

AgileAJAXApache TomcatAWSAWS LambdaBootstrap+77
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AM

Amrita Mukherjee

Screened

Senior Talent Acquisition Manager specializing in executive search and account management

East Brunswick, NJ16y exp
Ajulia Executive SearchSRM Institute of Hotel Management & Catering Technology

“Staffing leader who has managed a team of 7 recruiters and delivered rapid, multi-location hiring across both direct and contract placements. Partners closely with client-side HRBPs and C-suite stakeholders, including handling contract negotiations, and has improved hiring outcomes in challenging geographies through relocation and sign-on incentive strategies.”

OnboardingRegulatory ComplianceStakeholder ManagementAccount ManagementBusiness DevelopmentOperations Management+71
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VP

vineetha Pulipati

Screened

Mid-level Software Engineer specializing in backend microservices and cloud data pipelines

MO, USA4y exp
Morgan StanleyWebster University

“Backend engineer with Morgan Stanley experience building and owning an end-to-end Python FastAPI microservice for high-volume market data used by trading and risk systems. Strong in performance tuning and reliability (PySpark, Redis caching, async APIs), real-time streaming with Kafka, and production operations (Docker/Kubernetes, GitOps-style CI/CD, monitoring). Has led cloud/on-prem migration work across AWS and Azure, including fixing Azure Synapse performance issues via query and pipeline redesign.”

PythonSQLBashShell ScriptingTypeScriptC+++129
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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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VA

Vardhan Are

Screened

Mid-level Data Analyst specializing in AWS-based ETL, churn analytics, and BI dashboards

TX, USA6y exp
Lincoln FinancialFlorida Atlantic University

“Data/ML practitioner with experience at Airtel and Lincoln Financial delivering measurable business outcomes: improved retention 15% via NLP sentiment analysis and cut response time ~25% using sentence-BERT + FAISS semantic linking. Strong in data quality/identity resolution (SQL + fuzzy matching) and in building production-grade Python workflows orchestrated with Airflow/AWS Glue, including validation and dashboard integration in Power BI.”

SQLPythonPandasNumPySciPyNLTK+91
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PB

Pravalika Badam

Screened

Mid-level QA/SDET Automation Tester specializing in UI, API, mobile, and cloud testing

Houston, TX5y exp
Principal Financial GroupUniversity of North Texas

“SDET focused on end-to-end quality for web applications, owning UI/API/regression automation from framework design through CI/CD integration. Notably prevented a production payment/checkout incident by adding API validations that caught incorrect tax calculations (rounding logic) during CI before release, and has a track record of stabilizing flaky Cypress tests via robust selector and wait strategies.”

CypressPlaywrightCucumberBehavior-Driven Development (BDD)TestNGJUnit+164
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AB

Anjali Bhogi

Screened

Mid-Level Full-Stack Java Developer specializing in microservices, cloud, and AI integration

Atlanta, GA4y exp
State FarmNorthwest Missouri State University

“Backend engineer working on high-volume insurance claims intake systems who shipped a production GenAI document-classification capability in Spring Boot microservices. Emphasizes reliability in LLM systems (strict schemas, confidence thresholds, monitoring, and manual-review fallbacks) and runs evaluation loops with labeled historical documents to drive prompt/validation improvements and reduce manual review.”

JavaSpring BootSpring MVCSpring SecurityMicroservicesREST APIs+70
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GS

Gitesh Sagvekar

Screened

Mid-level Full-Stack Developer specializing in cloud-native healthcare applications

USA4y exp
AmgenClark University

“Full-stack engineer with recent experience at Amgen building an internal healthcare data validation/transformation and workflow automation service: Python/FastAPI backend with REST APIs plus a React UI, designed around a canonical contract-first model to handle inconsistent upstream data. Operates production systems on AWS (EC2/ELB/S3/CloudFront) with strong focus on observability (structured logs, correlation IDs) and safe CI/CD-driven migrations; also has experience shipping quickly in ambiguous environments at TCS.”

SDLCAgileWaterfallObject-Oriented Programming (OOP)MicroservicesREST APIs+143
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KS

keerthana s

Screened

Mid-level Backend Software Engineer specializing in Python/FastAPI on AWS

Los Angeles, California4y exp
McKessonUniversity of North Texas

“Backend engineer with healthcare domain experience building AI-driven radiology workflow systems. Evolved tightly coupled APIs into secure, reliable FastAPI-based services by moving heavy imaging/data processing into idempotent asynchronous pipelines with retries, feature-flagged incremental rollout, and strong data-integrity controls (constraints, backfills, validation). Strong focus on defense-in-depth security for sensitive patient data (OAuth2/JWT, RBAC, and database-level protections).”

PythonJavaScriptCC++C#PL/SQL+119
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DA

Devakalyan Adigopula

Screened

Mid-level Business Analyst specializing in Healthcare IT and Banking operations

Scranton, PA4y exp
CVS HealthUniversity of Scranton

“Cross-functional operator who regularly leads globally distributed work and acts as a bridge between product, UX, and analytics. Has driven reporting/dashboard and workflow automation initiatives with senior leadership, using data-backed communication and quick wins to improve adoption and efficiency.”

Requirements GatheringProcess ImprovementData AnalysisData ValidationDashboardingReporting+98
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SA

Siddhartha Alapati

Screened

Mid-Level Software Engineer specializing in Java/Spring microservices and full-stack web apps

Denton, TX4y exp
Dell TechnologiesUniversity of North Texas

“Software/full-stack engineer focused on deploying and integrating microservice applications into production AWS and hybrid cloud/on-prem industrial environments. Demonstrated end-to-end troubleshooting by tracing intermittent user failures to network routing/packet loss caused by load balancer and NIC misconfiguration, then adding monitoring to prevent recurrence. Also delivers customer-specific Python extensions with strong validation, testing, and backward compatibility.”

JavaSpring BootSpring CloudMicroservicesHibernateJDBC+175
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HB

Harideep Balusa

Screened

Mid-level AI/ML Engineer specializing in FinTech risk, fraud detection, and GenAI/RAG systems

USA6y exp
Freddie MacUniversity of Wisconsin

“Built and productionized Azure-based LLM/RAG systems for regulatory/compliance use cases, including automating analyst research and compliance report generation across large unstructured document sets. Demonstrates strong practical depth in hallucination mitigation, hybrid retrieval tuning (BM25 + embeddings), and production MLOps (Databricks, Cognitive Search, AKS, Airflow/MLflow), plus proven ability to deliver auditable, explainable solutions with non-technical compliance teams.”

PythonRSQLScalaMachine LearningDeep Learning+125
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MM

Matthew Melendez

Screened

Mid-level Data Scientist specializing in machine learning and analytics

Houston, TX5y exp
SyscoTexas Christian University

“Data scientist with hands-on experience building an XGBoost-based customer segmentation/churn risk scoring model used by sales and marketing teams. Emphasizes production-grade practices—efficient SQL for large-scale data pulls, rigorous data validation/testing, and scalable, modular Python code designed to support multiple customer types.”

PythonNumPyPandasScikit-learnMachine LearningFeature Engineering+56
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MM

Manita Manjari Das

Screened

Senior QA Automation Engineer specializing in API and microservices testing

Santa Monica, CA15y exp
PlayStationSambalpur University

“QA automation engineer who owned an end-to-end automated regression suite for a PlayStation digital store flow (login through checkout/payment), building a hybrid POM/data-driven framework from scratch with Selenium/TestNG/Cucumber and also using Playwright/TypeScript and Cypress. Integrated the suite into Jenkins CI/CD with nightly runs and reporting, improved coverage (happy + negative paths), and reduced release risk by catching critical issues like session timeout and transaction/payment defects before production.”

AgileAPI TestingAWSAWS LambdaBitbucketCI/CD+146
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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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HK

Hiya Kothari

Screened

Intern Full-Stack Software Engineer specializing in AI/ML and cloud

San Francisco, CA3y exp
Sparx LabsUC Irvine

“Built a Python-based geospatial machine learning backend for PFAS contamination risk mapping, including reproducible feature pipelines, ensemble modeling, and a FastAPI layer for visualization/analysis. Emphasizes data integrity and robustness (CRS/coverage checks, fail-fast validation) and has led safe backend refactors using feature flags, idempotent backfills, and Postgres RLS for secure, queryable results delivery.”

PythonJavaCC++JavaScriptTypeScript+103
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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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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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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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FE

Franz Engel

Screened

Junior Full-Stack & ML Engineer specializing in research tooling and applied machine learning

San Diego, CA1y exp
University of California, IrvineUC Irvine

“Full-stack engineer and ML assistant in UC Irvine’s CS department who deployed a lab project showcase platform and integrated on-demand execution of computational projects using Docker for isolation. Also built and optimized Linux cloud/cluster test automation for research, diagnosing RAM and network sync bottlenecks, and later led development of a Python-based predictive analytics tool for musicians using probabilistic graphical models and flexible data pipelines.”

AgileAngularAPI TestingAWSBackend DevelopmentC+86
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ST

Suraj Thangellapally

Screened

Junior Software Engineer specializing in machine learning and data science

San Jose, CA2y exp
dataAnnotationUC Irvine

“Python backend engineer who built a personal LLM-powered AI code review tool that parses code into context-preserving diff chunks and uses the OpenAI API to analyze and summarize changes. Has hands-on Kubernetes deployment experience (replicas, rolling updates, ConfigMaps/Secrets, health probes) and follows GitOps-style, declarative CI/CD workflows; also has experience designing streaming/event-style processing with attention to reliability and observability.”

PythonC++JavaJavaScriptTypeScriptSQL+118
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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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SV

Sathvik Vanja

Screened

Mid-level AI Engineer specializing in GenAI, LLM integration, and RAG pipelines

Overland Park, KS3y exp
HCA HealthcareVNR Vignana Jyothi Institute of Engineering and Technology

“Built and led deployment of an autonomous, self-correcting multi-agent knowledge retrieval and validation system at HCA Healthcare to reduce heavy manual research/validation in clinical/compliance documentation. Deeply focused on production reliability and cost—used LangGraph StateGraph orchestration plus ONNX/CUDA/quantization to cut GPU costs by 25%, and partnered with the Compliance VP using real-time contradiction-rate dashboards to hit a 40% automation goal without compromising compliance.”

AgileAWSAzure DevOpsAzure FunctionsAzure Machine LearningBash+131
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