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Vetted pandas Professionals

Pre-screened and vetted.

pandasPythonDockerSQLNumPyAWS
NT

Neel Thiru

Screened

Mid-level Data Analyst specializing in analytics engineering and financial services

3y exp
Lipdub AiSeneca Polytechnic

“Data-driven growth and partnerships professional with experience leading an analytics/reporting vendor rollout end-to-end (vendor selection via stakeholder interviews and PoC, then negotiating scope/pricing/support and tracking adoption/efficiency/accuracy KPIs). At PC Financial, built regression and segmentation models to optimize multi-channel targeting (in-app/email/push), driving +15% campaign engagement and +10% PC Optimum offer loads, and ran behavior-triggered lifecycle experiments that lifted upsell conversion by 20%.”

PostgreSQLMySQLTableauPower BIPythonPandas+54
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MA

Manas Agarwal

Screened

Junior Full-Stack Software Engineer specializing in Python APIs, React, and cloud AI integrations

Superior, CO2y exp
VertexOneUniversity of New Haven

“Customer-facing software engineer who builds and deploys practical AI/RAG solutions (e.g., an AI assistant for searching billing PDFs) by deeply understanding support workflows and iterating with users. Demonstrates strong production instincts—quickly stabilizing peak-traffic API timeouts with caching/background jobs, then implementing durable fixes with proper monitoring and maintainable code practices.”

PythonJavaJavaScriptTypeScriptPHPSQL+158
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TT

Ttanvi Tummapudi

Screened

Junior Data Scientist specializing in machine learning, predictive modeling, and applied AI research

2y exp
Georgia State UniversityGeorgia State University

“Data scientist/researcher who has built two multimodal LLM systems: an AI-assisted medical triage pipeline using GPT-4o vision + RAG with confidence-scored red/yellow/green outputs, and a master’s project on multimodal cyberthreat detection combining multiple models and using TinyLlama to generate human-readable risk reports. Also partnered with business analysts at Sanvar Technologies to deliver a churn prediction pipeline and Tableau dashboard for decision-making.”

A/B TestingAlgorithmsAnomaly DetectionArtificial IntelligenceData StructuresFeature Engineering+85
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JL

Jorge Leonardo Mejia Suarez

Screened

Executive Full-Stack Developer specializing in HealthTech and AI

Colombia9y exp
VitalesHSE University

“Frontend-focused builder who worked on the VITALES.LIFE healthcare app using Next.js/React Native alongside multiple backend technologies (NestJS, Go, Python/FastAPI) on Firebase/GCP. Has experience delivering client-driven MVPs (e.g., Omnicommander, Talentus) and uses Jest for test coverage while emphasizing code reuse and non-duplicative components.”

LeadershipWeb DevelopmentGoogle AdsProject ManagementBusiness DevelopmentReact+134
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NM

Nem Mehta

Screened

Intern AI & Machine Learning Engineer specializing in computer vision and edge deployment

Cincinnati, OH2y exp
Airtrek RoboticsUniversity of Cincinnati

“Built and shipped a real-time AI robotic inspection system, using a synthetic data generation pipeline to address rare edge cases—cutting data collection costs ~60% and boosting hard-scenario accuracy ~20%. Experienced in productionizing ML on constrained Jetson hardware and orchestrating end-to-end ML workflows with Airflow/Docker/Kubernetes, with a metrics-driven approach to reliability, evaluation, and stakeholder communication.”

Machine LearningComputer VisionDeep LearningObject DetectionPyTorchTensorFlow+139
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HP

Homak Patel

Screened

Junior Software Engineer specializing in Agentic AI and Data Systems

2y exp
EasyBee AINorth Carolina State University

“Forward Deployed Engineer at EasyBee AI who productionized a self-storage customer’s multi-agent LLM system end-to-end—rebuilding it with LangGraph/CrewAI, integrating with real property management + CRM systems via an MCP server, and adding observability/guardrails for reliable daily use. Experienced in live troubleshooting of agentic workflows, developer demos/workshops (including an open-source project, MerryQuery), and partnering with sales to close deals through customer-specific technical demos and fast integration feedback loops.”

PythonTypeScriptJavaScriptGoJavaC+130
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SM

Sree Manasa Vuppu

Screened

Mid-level AI Engineer specializing in Generative AI, LLMs, and RAG

Charlotte, NC5y exp
Discovery EducationUniversity of North Carolina at Charlotte

“Internship at Discovery Education building a production LLM/RAG chatbot that let marketing and sales teams query and interpret Looker/BI dashboards in natural language, with responses grounded in compliance and state education standards. Emphasizes rigorous evaluation (faithfulness/precision/recall/latency) plus user-feedback analytics, and used LangChain for orchestration, chunking/context-window control, and integration with enterprise sources like SharePoint.”

A/B TestingAnomaly DetectionAWSBackend DevelopmentBigQueryCI/CD+168
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AK

Aman Kumar Mushnam

Screened

Intern Full-Stack/Backend Engineer specializing in cloud-native APIs and event-driven systems

Warrensburg, MO2y exp
SodexoUniversity of Central Missouri

“Backend-focused engineer who built an academic AI voice assistant with a Python microservice-style backend (speech recognition, spaCy-based NLP, and Kafka-driven automation) optimized to sub-500ms latency. Also has Sodexo internship experience deploying containerized services across Kubernetes/AWS ECS/Azure using ArgoCD GitOps, including solving config drift and secret-management challenges and supporting cloud-to-on-prem migrations with blue-green rollouts.”

PythonJavaJavaScriptHTMLCSSBootstrap+97
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VB

Vedasahaja bandi

Screened

Mid-level AI Engineer specializing in NLP, computer vision, and healthcare analytics

Dartmouth, US3y exp
Integrated MonitoringUniversity of Massachusetts Dartmouth

“Data scientist who has built production LLM agents (GPT-4o + LangChain + RAG) to automate analyst-style ad hoc CSV analysis with guardrails and GPT-as-a-judge evaluation. Also delivered an explainable healthcare NLP system for ICD code classification by collaborating closely with clinicians, using a hybrid rule-based decision tree + BERT model to reach 97% accuracy and cut manual review time.”

API DevelopmentAWSAzure Data FactoryBashBERTBigQuery+133
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RM

Rafael Martinez

Screened

Director-level Applied AI & Data Analytics Engineer specializing in real-time decisioning systems

San Francisco, California2y exp
AgxesHult International Business School

“Built and shipped a production AI/LLM agent-based, event-driven credit underwriting/decisioning workflow that automated document understanding, retrieval, risk scoring, and compliance checks—cutting turnaround from ~90 days to ~5 minutes while boosting throughput 200x+ and approvals ~50%. Experienced with Airflow/Prefect orchestration, Redis/RabbitMQ queues, rigorous eval/monitoring, and close collaboration with non-technical underwriting teams.”

PythonSQLPandasNumPydbtETL+83
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LG

luis gonzalez

Screened

Junior Backend/Platform Engineer specializing in cloud-native APIs and data systems

Los Angeles, CA2y exp
PresentifyCalifornia State University, Los Angeles

“Startup-style full-stack/backend engineer with hands-on AWS architecture experience who shipped an LLM-driven assessment-question automation feature (Python microservice calling AWS Bedrock via SQS, deployed on Lambda) with strong validation/guardrails and retry strategies. Also improved production scalability by moving a CPU/IO-heavy file upload path out of a Go API into a queue/Lambda design monitored with CloudWatch, and has React+TypeScript experience optimizing analytics dashboards.”

AgileAmazon CloudFrontAmazon CloudWatchAmazon DynamoDBAmazon EC2Amazon ECS+105
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OS

Ofek Shaltiel

Screened

Mid-Level Full-Stack Software Engineer specializing in AI-enabled web platforms

Dallas, TX4y exp
HyperWater AIUniversity of Texas at Dallas

“Backend/AI engineer in construction tech (HyperWater AI) who delivered major production performance wins (analytics API from ~1 hour to 0.5s) and shipped LLM features for parsing subcontractor manifests into CSI divisions with human-in-the-loop review. Also built a freelance agentic document-verification system using OCR + RAG over pgvector with robust retry/escalation logic and user feedback loops.”

AgileAmazon DynamoDBAWSAWS LambdaCI/CDC+89
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AG

Adwit Gupta

Screened

Junior Machine Learning Engineer specializing in cloud-based ML and automation

1y exp
SolenaUniversity of Guelph

“Built and shipped a production multi-agent LLM system at Solena that automated internal project intake, validation, reporting, and stakeholder communications using Python, SQL, and LangChain, with strong emphasis on reliability (structured validation, safe defaults, logging, and state tracking). Also used LangGraph to orchestrate a multi-step video summarization pipeline, and has experience partnering with non-technical stakeholders to define “completion” criteria and reporting needs.”

PythonSQLJavaJavaScriptTypeScriptC+63
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VR

Vamshi Raoulakola

Screened

Mid-level Full-Stack & Data Engineer specializing in cloud-native systems and FinTech

United States4y exp
University of Central MissouriUniversity of Central Missouri

“Built and shipped production AI search and RAG features for a university portal, including an embeddings-based semantic search layer and a documentation-grounded assistant with citations and anti-hallucination prompting. Also developed scalable, reliable data pipelines integrating Google Ads/GA4/Meta APIs for automated reporting, with strong focus on evaluation loops and retrieval quality improvements (hybrid search, chunking, query-log driven iteration).”

JavaPythonJavaScriptTypeScriptPHPC+++135
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RM

Radhika Mangroliya

Screened

Senior Data Scientist / AI Engineer specializing in LLMs, RAG, and production ML

New York, NY5y exp
Bluesap SolutionsDePaul University

“Data science professional who has built a production RAG-based LLM question-answering system ("Flash Query") to deliver fast, accurate answers over large document collections, focusing on retrieval quality and grounded responses. Also collaborates with non-technical retail/jewelry stakeholders to turn business questions into predictive models and dashboards for decision-making.”

PythonSQLRCJavaHTML+89
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SS

Shuchi Shah

Screened

Senior Software Engineer specializing in Backend Systems and Generative AI (RAG)

San Jose, CA12y exp
OpGov.AISan Diego State University

“Backend engineer with experience building an end-to-end civic tech AI platform that ingests city council meeting videos, transcribes them with Whisper, and enables natural-language Q&A via a LangChain/FAISS RAG pipeline. Demonstrated strong systems thinking by tuning retrieval for accuracy/latency/memory (cutting response time ~3s→1s and memory ~500MB→25MB) and by safely migrating an ERP from monolith toward services using dual writes, reconciliation, and idempotency to protect financial workflows.”

Generative AIRetrieval-Augmented Generation (RAG)Prompt EngineeringHugging FaceOpenAILangChain+172
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RA

Ram Abhinav Vedant Madabushi

Screened

Junior Full-Stack/AI Engineer specializing in web platforms and LLM applications

Palo Alto, CA2y exp
FoodSupply.aiUniversity of Central Florida

“Backend engineer from FoodSupply.ai who built and evolved a scalable restaurant/supplier product and order management platform using Node.js and REST APIs. Implemented a hybrid MySQL+MongoDB data architecture, optimized performance with Redis/Prisma, and led a phased migration with feature flags and a temporary sync layer to maintain data consistency. Strong focus on production security (OAuth2, RBAC, row-level security, AWS IAM) and reliability practices (testing with Pytest, Docker/AWS pipelines).”

API GatewayAWSAWS IAMAWS LambdaBashBootstrap+116
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KP

Karthik Patralapati

Screened

Mid-level AI/ML Software Engineer specializing in GPU-optimized LLM inference and cloud microservices

Seattle, WA5y exp
DVR SoftekSan José State University

“Built and deployed a production RAG-based multilingual analytics assistant for healthcare operations, enabling non-technical teams to query claims/EHR and risk metrics with grounded explanations. Demonstrates strong end-to-end LLM system engineering (retrieval tuning, re-ranking, hallucination controls, verification layers) plus workflow orchestration (Airflow/Composer/Step Functions) and stakeholder-driven iteration via prototypes and dashboards.”

PythonPandasNumPyPySparkCC+++197
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BS

Baby Swathi Ramisetti

Screened

Mid-level Backend Software Engineer specializing in Python APIs and cloud-native systems

Detroit, MI5y exp
HarmonecareGolden Gate University

“Software/product engineer who owns customer-facing internal platforms end-to-end, with deep experience building data pipeline health and data quality tooling (near-real-time alerting and ops dashboards). Strong in React/TypeScript + Python REST architectures and microservices with RabbitMQ, emphasizing reliability patterns (idempotency, DLQs, correlation IDs) and fast, safe iteration via feature flags, testing, and observability.”

PythonDjangoFastAPIFlaskJavaC+186
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NO

Nnamdi Ozurigbo

Screened

Junior Business & Data Analyst specializing in automation, BI, and implementation

Remote, Canada5y exp
Semper8University of Windsor

“Operations- and growth-oriented candidate who improves external partner workflows through standardization and measurement (cut turnaround time ~40% while maintaining 99% accuracy). Also launched and scaled a university Excel/data analysis workshop using ICP-driven GTM and a tracked acquisition loop, increasing attendance 15% and generating 95% repeat-demand intent.”

Azure DevOpsDashboardingData AnalysisData ValidationDocumentationGoogle Workspace+55
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PM

Pranav Mishra

Screened

Junior Machine Learning Engineer specializing in LLM agents, RAG, and MLOps

Charlotte, NC2y exp
WheelPriceUniversity of Illinois Chicago

“AI/ML engineer who has shipped production systems across computer vision and conversational agents: built a YOLOv8-based wheel fitment pipeline at a Techstars-backed automotive startup, focusing on sub-second latency, monitoring, and robust fallback mechanisms that drove 2–3x page view growth and +5–6k users. Also built a voice-based interview platform orchestrating Deepgram + GPT-4 Mini + OpenAI TTS with FSM-driven reliability, and has hands-on RAG experience (LangChain, hybrid retrieval, cross-encoder reranking, custom pseudo-query generation).”

PythonJavaC++JavaScriptC#TensorFlow+117
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ST

Srikar Tharala

Screened

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

Remote, USA4y exp
ProcialCentral Michigan University

“Currently at ProShare and reports building an AI/LLM-powered system deployed to production, aimed at helping with status-related difficulties and reducing misunderstandings across transactions. Also cites prior collaboration at Porsche with marketing teams, focusing on translating marketing goals into technical requirements and communicating solutions clearly to non-technical stakeholders.”

Machine LearningDeep LearningGenerative AILarge Language Models (LLMs)Retrieval-Augmented Generation (RAG)LangChain+112
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TR

Taruni Reddy Ampojwala

Screened

Mid-level GenAI Engineer specializing in LLM agents and RAG systems

Brooklyn, NY4y exp
PamTenLong Island University

“Built and deployed a production RAG-based LLM assistant that answers day-to-day operational questions from internal PDFs/SOPs, with strong emphasis on data consistency (metadata versioning, confidence thresholds, conflict handling) and low-latency retrieval at scale. Experienced designing and orchestrating multi-agent LLM workflows (retrieval/validation/generation) and pipeline orchestration for ingestion/embedding/vector-store updates, plus iterative delivery with non-technical operations/business stakeholders.”

AlertingAnalyticsAWSBigQueryCI/CDClaude+107
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MV

MANOGNA VADLAMUDI

Screened

Junior AI Engineer specializing in LLM evaluation, prompt engineering, and AI orchestration

Chicago, IL1y exp
IDSIllinois Institute of Technology

“LLM workflow builder who has deployed a personalized GPT experience (including Delphi AI-based knowledge ingestion) and built a LangChain/LangGraph job-aggregation pipeline that ingests, normalizes/dedupes, filters, then uses an LLM to rank and summarize matches. Emphasizes production reliability with structured outputs, retries/fallbacks, metric-driven evaluation, logging/prompt versioning, and A/B testing, and collaborates with non-technical stakeholders through demo-driven iteration.”

PythonJavaScriptCSQLJavaObject-Oriented Programming (OOP)+106
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