Vetted PyTorch Professionals

Pre-screened and vetted.

DS

Junior AI/ML Engineer specializing in agentic AI and cloud optimization

Cupertino, CA1y exp
AdvantisUC San Diego
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SN

Mid-level Software Development Engineer specializing in backend systems and ML platforms

New York, USA2y exp
FlipkartNYU
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SV

Mid-level AI/ML Engineer specializing in recommendation, retrieval, and MLOps

San Francisco, CA5y exp
MetaConcordia University
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WY

Mid-level Software Engineer specializing in cloud infrastructure and distributed systems

Sunnyvale, CA3y exp
AmazonGeorgia Tech
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SC

Mid AI/ML Engineer specializing in LLM systems and inference optimization

Bay Area, CA5y exp
NVIDIAWebster University
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JD

Senior AI/ML Engineer specializing in NLP and Generative AI

Mount Morris, NY9y exp
HCLTechPenn State University
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KO

Mid-level AI/ML Engineer specializing in clinical NLP and FinTech ML systems

USA4y exp
Johnson & JohnsonUniversity of Central Missouri
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AK

Junior AI/ML Engineer specializing in LLM agents and full-stack AI systems

New York, NY2y exp
Transient AINYU
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BB

Senior Full-Stack Engineer specializing in AI-powered enterprise applications

San Francisco, CA5y exp
DatabricksPace University
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MM

Senior AI/ML Engineer specializing in NLP, computer vision, and MLOps

Ohio, USA10y exp
Pixolat LLC
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SH

Senior AI Infrastructure & Backend Engineer specializing in LLM systems

Pennsylvania, USA9y exp
Perplexity
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SV

Senior AI Infrastructure Engineer specializing in LLM systems and real-time ML platforms

Brooklyn, NY8y exp
Artera
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Peeyush Dyavarashetty - Intern AI/ML Engineer specializing in GenAI, LLMs, and agentic RAG systems in Miami, FL

Peeyush Dyavarashetty

Screened ReferencesModerate rec.

Intern AI/ML Engineer specializing in GenAI, LLMs, and agentic RAG systems

Miami, FL2y exp
Scale Up 360University of Maryland, College Park

AI/LLM practitioner who built a GPT-2-like language model from scratch at the University of Maryland using PyTorch and multi-GPU distributed training, with experiment tracking in Weights & Biases. As an AI Operations intern at ScaleUp360, delivered multiple production-style AI agent automations (Gmail classification and Fireflies-to-Claude workflows that extract and assign CEO tasks) and set up measurable evaluation using test cases and classification metrics.

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Kanishka Harwani - Intern Robotics & Embedded Systems Engineer specializing in ROS2 autonomous mobile robots in New York, NY

Kanishka Harwani

Screened ReferencesModerate rec.

Intern Robotics & Embedded Systems Engineer specializing in ROS2 autonomous mobile robots

New York, NY1y exp
New York UniversityNYU

Recent graduate with a prototyping/hardware engineering background who is building a ROS2-dependent swarm robotics system for transporting non-standard cargo using 3+ robots. Has hands-on experience integrating multiple sensor modalities (LiDAR, IMU, GPS, radar) and developing custom teleoperation ROS nodes, currently tackling networking/communication challenges in multi-robot coordination.

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SS

Surya Singh

Screened ReferencesModerate rec.

Mid-level AI/ML Engineer specializing in FinTech and fraud detection

United States4y exp
PayPalCalifornia State University, Fullerton

ML/backend engineer with PayPal experience building high-stakes production systems, including a GenAI internal support assistant and a real-time fraud scoring pipeline. Strong in Python/FastAPI, model-serving infrastructure, RAG architecture, and production observability, with clear readiness to transition those backend patterns into a TypeScript stack.

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AG

Aman Garg

Screened

Mid-Level Full-Stack Software Engineer specializing in Python and React/TypeScript

San Francisco, CA5y exp
ZEISSGeorgia Tech

Built and shipped a map-embedding SDK (published to npm) for Walmart apps, solving key performance issues with real-time streaming (WebSockets) and Canvas rendering while prioritizing developer experience. Also applies LLM/agentic patterns in production workflows—using diagnostic agents and human-in-the-loop escalation to detect and resolve issues (e.g., voice agent loops caused by RAG API failures). Has sales-engineering experience supporting enterprise renewals, including a million-dollar contract renewal while at Siemens working with Ford stakeholders.

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SN

Mid-level AI/ML Engineer specializing in NLP, graph models, and MLOps for FinTech and Healthcare

Remote, USA5y exp
StripeKent State University

AI/ML engineer who has deployed production LLM/transformer-based systems for merchant intelligence and fraud/support optimization, delivering +27% merchant engagement and +18% payment success. Deep experience in privacy-preserving, PCI DSS-compliant data/ML pipelines (Airflow, AWS Glue, Spark, Delta Lake) and scalable microservices on Kubernetes, plus proven cross-functional delivery in healthcare claims analytics at UnitedHealth Group (12% HEDIS claim reduction).

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JT

Justin Turner

Screened

Executive Technology Leader (CTO/CIO/CISO) specializing in cloud, security, and data platforms

Tampa, FL29y exp
OnMedTampa Technical Institute

CTO-level technology leader with experience building end-to-end tech strategy and roadmaps, modernizing legacy environments in healthcare (GenesisCare), and scaling engineering into large global teams (Amadeus). Built a DevOps organization at Syniverse for the Visibility Suite, implementing Kubernetes/Terraform/Chef automation that drove ~75% faster deployments, and is known for staying hands-on (including data center work) while leading strategically.

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SR

Sanketh Reddy

Screened

Senior Data Engineer specializing in cloud data platforms and large-scale ETL

Jersey City, NJ6y exp
JPMorgan ChaseUniversity of Texas at Dallas

Data engineer focused on large-scale ETL/ELT pipelines across cloud stacks (GCP and AWS), including Spark-based transformations and orchestration with Airflow. Has experience loading up to ~2TB per BigQuery target table and designing atomic loads to multiple downstream systems (Elasticsearch + Kafka), with Kubernetes deployment and Jenkins CI/CD.

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SR

Senior Infrastructure Platform Architect specializing in Kubernetes and hybrid cloud

Chicago, IL9y exp
ExelonGeorge Mason University

Platform/infra engineer with strong ownership of Kubernetes on VMware and day-to-day hybrid on-prem-to-AWS operations. Has hands-on experience automating infrastructure delivery with Terraform/Ansible/CI-CD, and has resolved real production issues spanning CSI storage reattachment during upgrades, vSphere storage-latency performance degradation, and hybrid connectivity/routing failures with improved validation, monitoring, and failover.

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Vignesh Shanmugasundaram - Junior Software Engineer specializing in full-stack development and applied ML in New York, NY

Junior Software Engineer specializing in full-stack development and applied ML

New York, NY2y exp
AmazonNYU

Full-stack engineer with experience at Zoho and Amazon who has owned production systems end-to-end, including a monolith-to-microservices migration using Kafka and Cassandra that improved search latency ~25% and increased throughput without data loss. Also built a hackathon project (Buildwise) into a sold product for a construction company (AI-driven document compliance checks) and shipped an IoT-based parking availability MVP in 3 weeks.

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Gagan Mundada - Intern Machine Learning Engineer specializing in multimodal AI and evaluation benchmarks in San Diego, CA

Gagan Mundada

Screened

Intern Machine Learning Engineer specializing in multimodal AI and evaluation benchmarks

San Diego, CA2y exp
McAuley Lab, UC San DiegoUC San Diego

ML-focused candidate with beginner ROS/ROS2 experience (custom pub-sub nodes; TurtleBot3 SLAM simulation debugging via topic inspection and transform/orientation checks). Has research/project exposure to LLM training approaches (GRPO with pseudo-labels using Hugging Face TRL on Qwen/Llama) and uses Docker/Kubernetes + CI/CD to run ViT saliency-attention/compression workloads on UCSD Nautilus infrastructure.

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Poorna Pedapudi - Mid-Level Software Engineer specializing in distributed backend systems and cloud-native microservices in Seattle, WA

Mid-Level Software Engineer specializing in distributed backend systems and cloud-native microservices

Seattle, WA5y exp
UberGeorge Mason University

Software engineer focused on data platforms and applied LLM systems: built an internal data quality monitoring layer to catch silent data drift and iterated post-launch after finding ~30% false-positive alerts, reducing noise via dynamic baselines and improved structured logging. Also shipped a production RAG-based internal knowledge assistant over Jira/Confluence with citations, confidence-based fallbacks, and nightly automated evals to prevent regressions.

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