Vetted TensorFlow Professionals

Pre-screened and vetted.

SA

Shreya Andela

Screened

Mid-level AI/ML Engineer specializing in GenAI, RAG, and enterprise data platforms

5y exp
JPMorgan ChaseUniversity of North Texas

Built and shipped a production LLM-powered RAG assistant for enterprise internal document search (PDFs, knowledge bases, structured data), addressing real-world issues like noisy documents, hallucinations, and latency with grounded prompting, retrieval-confidence fallbacks, and performance optimizations. Also partnered with compliance and business teams at JPMc to deliver a solution aligned with regulatory constraints, supported by monitoring, feedback loops, and systematic evaluation.

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JG

Jorge Garcia

Screened

Junior Robotics/Controls Engineer specializing in ROS2 autonomy, perception, and medical robotics

Palo Alto, CA2y exp
BDMLStanford University

Robotics software engineer/researcher at Stanford PDML Lab building VisualFT, a ROS2-based visual-tactile sensing system for compliant force-control guidance in acupressure/ultrasound-style manipulation. Also interned at Neocis (dental robotics) improving safety-critical collision detection using Bullet Physics with automated validation and CI (Jenkins/CDash).

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PP

Intern Software Engineer specializing in AI, computer vision, and full-stack development

Champaign, USA2y exp
University of Illinois Urbana-Champaign Veterinary Innovation HubUniversity of Illinois Urbana-Champaign

Summer SDE intern at AWS who built and deployed a column-lineage debugging tool for on-call engineers, using AWS Bedrock to parse SQL and generate a column DAG. Integrated the tool into an existing validation system and hardened it against real-world SQL format differences via flexible parsing and testing with queries from multiple upstream teams.

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VV

Vishnu Varma

Screened

Senior AI/ML Engineer specializing in LLMs, GenAI, and MLOps

Milpitas, California8y exp
DatabricksCampbellsville University

AI/ML engineer (Cognizant) who built a production, real-time credit card fraud detection platform combining deep-learning anomaly detection with an LLM-based explanation layer. Strong focus on regulated deployment: addressed class imbalance and feature drift, and added guardrails (SHAP/structured inputs, fine-tuning on analyst reports, rule-based validation) to keep explanations accurate and compliant. Orchestrated the full pipeline with Airflow + Databricks/Spark and used MLflow/Prometheus plus A/B and shadow deployments for measurable reliability.

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KT

Mid-level Data Scientist specializing in machine learning and generative AI

Saint Louis, MO5y exp
DoorDashSaint Louis University

ML/LLM engineer who has shipped a production transformer-based document understanding system on AWS, owning the full pipeline from domain fine-tuning to Dockerized CI/CD deployment. Demonstrates strong production rigor—latency optimization (distillation/quantization, async batching, autoscaling), orchestration with Airflow/Step Functions/Azure Data Factory, and monitoring/drift detection—plus experience translating ops stakeholder needs into adopted AI automation via dashboards.

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RR

Mid-level Data Scientist specializing in risk, forecasting, and segmentation across finance and healthcare

McLean, Virginia5y exp
Capital OneUniversity of Cincinnati

Data/ML engineer with experience across pharma (Dr. Reddy Laboratories) and financial services (Cincinnati Financial, Capital One), building production NLP and entity-resolution systems that connect messy unstructured text with enterprise SQL data. Delivered semantic search with BERT + vector DB and domain fine-tuning (reported ~35% relevance lift), and builds robust pipelines using Airflow/dbt/Spark with strong validation, monitoring, and stakeholder-aligned rollout practices.

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SK

Junior Software Engineer specializing in cybersecurity and cloud-native AI

Boulder, CO3y exp
University of Colorado BoulderUniversity of Colorado Boulder

Backend-focused full-stack engineer who built an MVP at Neon AI for PhD students: a FastAPI backend integrating multiple cloud and local LLMs plus a RAG pipeline with session/identity management, designed to be modular and extensible across domains. Also has VMware experience debugging production issues and executing safe, API-compatible refactors with staged rollouts and strong security controls.

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SJ

Shreya Jena

Screened

Mid-level Software Engineer specializing in distributed backend systems and search platforms

Dallas, TX2y exp
JioCarnegie Mellon University

Backend/data-systems SWE (2 years) who has built production ETL/streaming workflows (Kafka, Debezium, Elasticsearch) and troubleshot real SQL performance regressions caused by indexing/type issues. Also ships full-stack personal projects in Next.js App Router + TypeScript with Postgres, emphasizing reliability via constraints, idempotency, and strong observability (Grafana/Kibana).

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Vivek Reddy - Mid-level Data Scientist/Data Engineer specializing in ML pipelines, insurance and healthcare analytics in Los Angeles, CA

Vivek Reddy

Screened

Mid-level Data Scientist/Data Engineer specializing in ML pipelines, insurance and healthcare analytics

Los Angeles, CA7y exp
Venture ConnectUC Berkeley

Built a production assistive-vision iPhone app to help visually impaired users find grocery items, training a custom YOLO detector on 2,000+ self-collected/annotated images and deploying via CoreML with a cloud multimodal LLM for navigation instructions. Brings hands-on AWS serverless + ECS container deployment (CDK/GitHub Actions) and a disciplined approach to AI workflow reliability (state-machine design, offline evals, stress tests, logging/metrics), plus experience communicating model insights to non-technical stakeholders (MOTER Technologies).

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Swagat Adhikary - Junior Software Engineer specializing in LLM agents and FinTech platforms in Raleigh, NC

Junior Software Engineer specializing in LLM agents and FinTech platforms

Raleigh, NC1y exp
Fidelity InvestmentsUniversity of Texas at Austin

AI/LLM engineer with Fidelity Investments experience who built and shipped a production GraphRAG system that augmented prompts with codebase context, improving business analyst efficiency by 15% and saving ~$3.5M annually. Strong in AWS EKS/Kubernetes/Helm and enterprise IAM/OIDC patterns (including cross-account S3 access), with experience mentoring interns and collaborating with non-technical leaders to extend AI pipelines (e.g., adding SQL functionality during MVP).

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Gagan Reddy Konani - Mid-level Machine Learning Engineer specializing in LLMs and RAG for healthcare in Remote, USA

Mid-level Machine Learning Engineer specializing in LLMs and RAG for healthcare

Remote, USA2y exp
MedtronicUniversity of Illinois Chicago

AI Engineer (Medtronic) who deployed a production RAG-based clinical assistant grounded in curated biomedical literature (no patient-identifiable data). Deep hands-on experience orchestrating and hardening LLM workflows with LangChain/LangGraph, including stateful agentic flows, rigorous testing, and evaluation; reports a 72% accuracy improvement through retrieval enhancements (query rewriting, multi-query expansion, MMR reranking).

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Sakshi Dinesh Deore - Mid-level Software Engineer specializing in AWS, DevOps automation, and data platforms in Bellevue, USA

Mid-level Software Engineer specializing in AWS, DevOps automation, and data platforms

Bellevue, USA3y exp
AmazonUC San Diego

Engineer with Securonix experience deploying and operating production microservices and real-time data-processing systems at high throughput. Led AWS infrastructure, CI/CD, monitoring, and customer-driven customization for a threat-report classification solution, including rule adjustments and model retraining based on live client feedback.

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TY

THIEN Y TRAN

Screened

Mid-level Software Engineer specializing in Kubernetes platform engineering and FinTech

Seattle, WA4y exp
BlockUniversity of Texas at Austin

Platform/infrastructure-focused engineer with hands-on experience automating AWS EKS upgrades in Python, building observability around logs/metrics/SLOs, and migrating Terraform delivery from CodePipeline to Atlantis. They describe shipping automation that handled 140 resources across 50+ Terraform files ahead of schedule and debugging a Karpenter/CoreDNS regression in Kubernetes by tracing it from regional traffic spikes to a missing local DNS cache configuration.

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AP

Mid-level AI/ML Engineer specializing in Generative AI, NLP, and Computer Vision

USA4y exp
DatabricksGannon University

ML/AI engineer with strong end-to-end production ownership across predictive ML and Generative AI use cases. They built a churn prediction platform that cut churn 12% and preserved about $1.2M in annual revenue, and also shipped a RAG-based support assistant that reduced ticket resolution time 30% while improving agent satisfaction and onboarding speed.

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Yash Patel - Mid AI/ML Engineer specializing in MLOps and cloud platforms in Texas, USA

Yash Patel

Screened

Mid AI/ML Engineer specializing in MLOps and cloud platforms

Texas, USA3y exp
OracleUniversity of Texas at Arlington

ML/AI engineer with strong end-to-end production ownership across classical ML and GenAI systems. Built and deployed predictive analytics and RAG-based internal tools on AWS/Kubernetes with measurable impact on accuracy, latency, deployment speed, safety, and user productivity.

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Abhirup Chakraborty - Junior Software Engineer specializing in backend systems, AI, and search in Champaign, IL

Junior Software Engineer specializing in backend systems, AI, and search

Champaign, IL3y exp
University of Illinois FoundationUniversity of Illinois Urbana-Champaign

Built a complex graph-based search engine to find connections between people and has hands-on experience designing multi-agent coding pipelines that move features through implementation, test generation, testing, and sanity checks. Stands out for treating AI agents like an engineering team, with shared-memory coordination, queue signaling, and completeness-focused guardrails to improve reliability and reduce ambiguity.

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JY

Josh Yu

Screened

Executive software engineering leader specializing in SaaS platform modernization and AI

Atlanta, GA20y exp
OneTrustUniversity of Akron

Senior engineering leader with over 20 years of management experience and a hands-on background leading large-scale SaaS, eCommerce, CRM, and customer data platform systems serving millions of users. Stands out for combining deep technical architecture leadership with org-scale people management, including solving multi-tenant SaaS scaling issues, driving self-service product improvements from support patterns, and building governance models for cross-functional delivery.

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SK

Director-level Enterprise Architect specializing in SaaS cloud platforms and SRE

New York, NY19y exp
IvantiTufts University

Engineering leader focused on multi-cloud platform modernization, combining deep hands-on expertise in Kubernetes, Terraform, GitOps, and DevSecOps with management of 18-person DevOps/SRE/software teams. Particularly strong in building secure, scalable enterprise SaaS infrastructure and Spark/Databricks data platforms while driving cross-functional standardization, reliability, and faster release cycles.

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YS

Yujian Song

Screened

Junior Software Developer specializing in full-stack systems and applied AI

New York, NY2y exp
DentalFyndCarnegie Mellon University

Front-end engineer with experience spanning a real-time warehouse tracking dashboard and internship work on media-heavy mobile web apps embedded in a Swift container. Particularly strong at making complex, fast-changing data understandable in the browser while preserving performance, navigation stability, and user context.

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JY

Josh Yu

Screened

Executive software engineering leader specializing in SaaS platforms and AI transformation

Atlanta, GA20y exp
OneTrustUniversity of Akron

Senior engineering leader who scaled a global organization from 15 to roughly 100 people and operates comfortably at both executive and hands-on architecture levels. Has led SaaS platform improvements, AI-based compliance workflow automation with LLM observability, and consumer-facing product modernization using analytics-driven UX decisions.

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Vijayagopalan Raveendran - Principal Enterprise Architect specializing in AI, cloud, data, and FinTech transformation in Jersey City, NJ

Principal Enterprise Architect specializing in AI, cloud, data, and FinTech transformation

Jersey City, NJ20y exp
Costco WholesaleBITS Pilani

Solutions/technical consulting professional with enterprise experience supporting major accounts including Costco, MasterCard, Delta Dental of Michigan, and Fannie Mae. Brings a blend of cloud migration, enterprise architecture, security/IAM integration, and business-case development, plus hands-on automation work in Python and GCP to modernize sales-related data processing.

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KS

Kaival Shah

Screened

Intern Software Engineer specializing in cloud, backend, and ML systems

California, USA1y exp
AmazonGeorge Mason University

Full-stack builder with hands-on experience spanning a MERN e-commerce product, an AI code review agent, and an ambiguous AWS internship project involving PyTorch/TensorFlow support in Redshift. Particularly interesting for recruiters because they combine product-minded engineering with AI agent reliability work, including CI/CD integration, telemetry via Weights & Biases, and measurable impact like 80% reduction in manual review effort.

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MA

Moh Abdullah

Screened

Senior AI/ML Engineer specializing in Generative AI, LLMs, and production ML systems

New York, USA9y exp
Luma AI

ML/AI engineer with hands-on ownership of both classical ML and GenAI systems in production. They built an end-to-end churn prediction service on AWS and also shipped RAG-based document search/summarization features, with clear experience in monitoring, hallucination reduction, cost/latency optimization, and creating shared Python/LLM infrastructure used across teams.

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