Vetted Snowflake Professionals

Pre-screened and vetted.

JJ

Mid-level Data Engineer specializing in cloud data platforms and real-time pipelines

Denton, TX5y exp
Real DynamicsUniversity of North Texas

Data engineer who has owned production pipelines end-to-end—from Kafka/Airflow ingestion through SQL/Python validation and dbt transformations into Redshift/BI. Also built and operated a large-scale distributed web scraping platform (50–100 sites daily, ~5–10M records/day) with Kubernetes, Kafka queues, robust retries/DLQ, anti-bot measures, and backfill-safe raw HTML storage.

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Nagendra Reddy Palugulla - Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps in Florida, United States

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps

Florida, United States4y exp
Community Dreams FoundationUniversity of Houston

Built and shipped a production real-time content moderation platform for Zoom/WebEx-style meetings, combining Whisper speech-to-text with fast NLP classifiers and REST APIs to flag hate speech, bias, and HIPAA-related content under strict latency constraints. Demonstrates strong MLOps/infra depth (Airflow, Kubernetes, Terraform/Helm, observability) and a pragmatic approach to reducing false positives via threshold tuning, context validation, and hard-negative data—while partnering closely with compliance and product stakeholders.

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Arjun Shrestha - Intern AI/GenAI Engineer specializing in NLP, RAG, and Snowflake Cortex in Columbus, Ohio

Intern AI/GenAI Engineer specializing in NLP, RAG, and Snowflake Cortex

Columbus, Ohio1y exp
VertivLamar University

Built and deployed a production AI invention/patent review platform that compares invention submissions against patent rules to provide instant feedback, reportedly cutting legal team review time by ~80%. Learned Snowflake Cortex LLMs and production deployment (Docker + AWS) on the job, and validated system quality through human-in-the-loop testing with experienced legal stakeholders.

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Shiva Dasi - Mid-level Software Engineer specializing in LLM agents and cloud-native systems in Boston, MA

Shiva Dasi

Screened

Mid-level Software Engineer specializing in LLM agents and cloud-native systems

Boston, MA4y exp
Rebecca Everlene Trust CompanyNortheastern University

Built and shipped production LLM agents in compliance-sensitive environments (FERPA), emphasizing reliability via structured outputs, state-graph orchestration (LangGraph), and CI-driven eval/regression testing. Also has experience hardening messy ERP ingestion pipelines at scale (50K monthly orders) with normalization, idempotency/deduplication, and robust failure handling using AWS (SQS/CloudWatch) and PostgreSQL.

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Panita Vaishnavi Kanaguduru - Mid-level Business Analyst specializing in retention, churn, and revenue analytics in Remote

Mid-level Business Analyst specializing in retention, churn, and revenue analytics

Remote4y exp
SuperworldUniversity of Central Florida

Early-career data analyst with hands-on experience at SuperWorld building SQL and Python analytics pipelines for product and growth use cases. They stand out for turning messy event and transaction data into validated funnel datasets, automating reporting to cut manual effort by ~40%, and partnering with product and marketing teams on conversion and engagement metrics.

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MP

Mid-level Data Engineer specializing in FinTech data platforms

California, USA4y exp
AlloyUniversity of Massachusetts Dartmouth

Backend-focused engineer with experience at Ramp, Easebuzz, and George Mason University, spanning data pipelines, workflow automation, and production reliability. Stands out for quantifiable performance gains, strong debugging instincts in distributed job systems, and translating ambiguous finance operations processes into measurable automation outcomes.

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Keeravani Chekuri - Mid-level AI/ML Engineer specializing in LLM systems and MLOps in Boston, MA

Mid-level AI/ML Engineer specializing in LLM systems and MLOps

Boston, MA3y exp
Nexoraschool.aiUniversity of Massachusetts

Built and deployed an AI tutoring assistant end-to-end at Nexora School, spanning discovery with school districts, multi-agent LangGraph/RAG architecture, AWS Bedrock migration, and post-launch stabilization. Stands out for combining hands-on LLM systems engineering with strong educator-facing trust building, FERPA-driven architecture decisions, and disciplined production practices around evals, logging, and messy document ingestion.

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KV

Mid-level Software & ML Engineer specializing in agentic LLM systems and ML infrastructure

Remote4y exp
Cloud Systems LLCVirginia Tech

Built and deployed an LLM-to-SQL automation system in a closed/internal environment, using a retriever–reranker–validator architecture on Kubernetes with strong security controls (semantic + rule-based validation and RBAC), achieving 99% uptime and cutting manual query time ~40%. Also worked on genomic sequence classification and semantic search workflows, orchestrating data prep with Airflow, tracking/deploying with MLflow, and optimizing distributed multi-GPU training on a university Kubernetes cluster.

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AG

Mid-Level Full-Stack Developer specializing in React, React Native, and cloud data systems

Berlin, Germany4y exp
Lightspeed HospitalityUniversity of California

Full-stack engineer who built a checklist configuration/task execution system using Next.js App Router + TypeScript, with a React Native app consuming the execution UI via WebView. Was the only full-stack developer at a very small startup (CTO/CFO/CEO team), owning feature delivery plus client-facing on-call debugging, and has hands-on Postgres modeling and query optimization experience.

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Krishna K - Junior Machine Learning Engineer specializing in multimodal systems and LLMs in Jersey City, NJ

Krishna K

Screened

Junior Machine Learning Engineer specializing in multimodal systems and LLMs

Jersey City, NJ2y exp
JerseySTEMUniversity at Buffalo

Built and productionized a domain-specific LLM-powered RAG knowledge assistant at JerseyStem for answering questions over large internal document corpora, owning the full stack from FAISS retrieval and LoRA/QLoRA fine-tuning to AWS autoscaling GPU deployment. Drove measurable gains (28% accuracy lift, 25% latency reduction) and improved reliability through hybrid retrieval, grounded decoding, preference-model reranking, and Airflow-orchestrated pipelines (35% faster runtime), while partnering closely with non-technical stakeholders to define success metrics and ensure adoption.

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Aneri Patel - Junior Machine Learning Engineer specializing in LLM fine-tuning and semantic retrieval in Washington, D.C.

Aneri Patel

Screened

Junior Machine Learning Engineer specializing in LLM fine-tuning and semantic retrieval

Washington, D.C.2y exp
Enquire AI, Inc.George Washington University

Backend engineer with legal-tech and AI workflow experience: built JurisAI, an end-to-end legal research system using OCR + embeddings + Pinecone vector search to deliver citation-grounded LLM answers with safe failure modes (~90% recall@K). Also led a GW Law metadata migration into Caspio with batch validation and parallel rollout, and has strong FastAPI/GCP production reliability and observability practices.

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HC

Mid-level Data Engineer specializing in cloud data platforms and ETL automation

Atlanta, GA4y exp
Blue Diamond TechnologiesUniversity of Texas at Arlington

Data engineer who has owned high-volume production pipelines end-to-end (200–300 GB/day) on AWS, implementing strong data quality/observability and achieving 99.9% reliability while cutting data issues ~33%. Also built a large-scale external data collection system ingesting millions of records/day with anti-bot/rate-limit handling and backfill tooling, and shipped a versioned REST service exposing curated Snowflake data to downstream teams.

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Tamanna Nandlal Choithani - Entry-level Full-Stack Engineer specializing in AI and distributed systems in California, USA

Entry-level Full-Stack Engineer specializing in AI and distributed systems

California, USA1y exp
BottlelyArizona State University

Full-stack engineer who built an AI-based inventory/procurement query system at Botlily/Botlerly using Flask and Google Sheets as a live knowledge base, overcoming Sheets latency with caching and structured in-memory models. Demonstrated strong LLM product engineering (40% accuracy improvement via preprocessing/prompting) and customer-driven iteration with bar/restaurant owners, evolving the tool into a more comprehensive inventory management and forecasting solution.

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BD

Brian Daddino

Screened

Director-level software engineering leader specializing in IoT, cloud architecture, and enterprise systems

Wake Forest, NC15y exp
IntelliShiftFarmingdale State College

Senior engineering leader who says he spent the last 7 years implementing rather than planning, including building a one-person engineering function into a fully operational department with standards, KPIs, Scrum, QA, and automation. He also designed the full technical ecosystem across application, backend, enterprise architecture, ETL, IoT, and CI/CD, and has additional exposure to VC-backed environments and M&A integration leadership.

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SC

Executive CTO and startup founder specializing in SaaS, AI, and healthcare technology

Chicago, IL28y exp
Hammerbeam FractionalBucknell University

Serial founder and fractional CTO with 8 companies founded and 3 exits, now looking to commit full-time to a venture-backable startup. Currently advising two startups that recently raised $400K friends-and-family and $1M pre-seed, and brings thoughtful perspective on venture-scale economics, team quality, and AI disruption risk.

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Yanet Fernandez - Junior Data Analyst specializing in healthcare analytics in Fort Myers, FL

Junior Data Analyst specializing in healthcare analytics

Fort Myers, FL2y exp
NeoGenomicsEastern University

Analytics/data professional with hands-on experience turning messy semi-structured CRM JSON data in Snowflake into clean reporting layers using SQL and validation logic. Brings a practical mix of data engineering, Python automation, metric design, and stakeholder alignment to improve reporting accuracy and speed of decision-making.

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AS

Aashi Sethiya

Screened

Mid-level Business Analyst specializing in healthcare and data analytics

Charlotte, NC5y exp
GUARDIAN’S EMBRACEUniversity of North Carolina at Charlotte

Analytics-focused candidate with hands-on experience building SQL and Python pipelines for messy, high-volume data across e-commerce, marketing, healthcare, and regional resource allocation use cases. Particularly strong in turning ambiguous business problems into operational metrics and trusted Power BI reporting, including CLV, patient retention, and vulnerability-based segmentation.

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SG

Mid-level Data Analyst specializing in ETL pipelines and business intelligence

Albany, NY4y exp
Office of the New York State ComptrollerUniversity at Albany

Analytics-focused candidate with hands-on experience building compliance and contract utilization reporting from messy contract, vendor, subcontractor, and payment data. They combine SQL and Python automation to improve reporting speed and accuracy, and show strong stakeholder discipline through validation sessions, documentation, and dashboard adoption.

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vinod yendluri - Mid-level MLOps Engineer specializing in production machine learning systems in Hyderabad, India

Mid-level MLOps Engineer specializing in production machine learning systems

Hyderabad, India3y exp
Freddie's FlowersUniversity of Cincinnati

Built an end-to-end churn prediction platform at Freddi's Flowers spanning Spark ETL on AWS, model serving, monitoring, and a stakeholder-facing dashboard. Stands out for combining MLOps rigor with product thinking—adding explainability, action-oriented workflows, and config-driven multi-tenant architecture while improving latency and automating drift response.

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HS

Human Sagheer

Screened

Senior AI/ML Engineer specializing in Agentic AI, RAG, and LLM systems

Chicago, IL8y exp
Origami RiskAir University

ML engineer with hands-on experience building production AI systems spanning agentic AI, RAG, LLM automation, fraud detection, and predictive analytics. At Origami Risk, they designed and implemented an enterprise RAG platform end to end using LangChain, LangGraph, vector search, and AWS Bedrock to improve internal knowledge retrieval, reduce manual effort, and raise response quality across teams.

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VD

Mid-level Java Software Engineer specializing in microservices and FinTech

Maryland, USA4y exp
Sage BionetworksUniversity of Maryland, College Park

Full-stack engineer with experience spanning enterprise financial services and biomedical AI systems. They’ve shipped React/TypeScript and Spring Boot products with measurable production impact, contributed to an AWS-deployed LLM/MCP service for governed research data on Synapse, and also built a zero-to-one AI-powered Terms of Service and privacy policy crawler from scratch.

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CH

Executive Engineering Leader specializing in scaling SaaS platforms and teams

Jacksonville, Florida18y exp
Tithely

Head of Engineering and former long-time development agency owner (~10 years) pursuing CTO roles, with a strong 0-to-1 mindset focused on PMF/TAM and rapid MVP delivery. Led a 3-person team to design and ship a simplified website builder in one month (2023) that is now growing 10–15% YoY, and advocates for agentic AI/spec-driven development (BMAD principles, Claude Code) to help small teams move faster than traditional larger orgs.

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AB

Mid-level Data & Analytics Analyst specializing in SQL, Snowflake, and AWS automation

Catonsville, MD4y exp
Erickson Senior LivingUniversity of Maryland, Baltimore County
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HS

Senior Software Engineer specializing in cloud systems and Web3 platforms

Sugar Land, Texas3y exp
Labs196 Innovations LLCNortheastern University
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