Vetted PyTorch Professionals

Pre-screened and vetted.

VV

vishal varma

Screened

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

6y exp
CVS HealthUniversity of Bridgeport

Built and deployed a production RAG-based LLM Q&A and summarization platform for internal documents, emphasizing grounded answers with structured prompting and citations to reduce hallucinations. Experienced orchestrating end-to-end LLM workflows with LangChain plus cloud pipelines (Azure ML Pipelines, AWS), and runs iterative evaluation using both metrics (accuracy/hallucination/latency/cost) and real user feedback to drive reliability.

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RA

Junior Robotics Software Engineer specializing in embedded radar and ROS2 autonomy

Mountain View, CA2y exp
SonatusJohns Hopkins University

Robotics software engineer who has built full ROS 2 stacks for both a semi-automated robotic ultrasound system (UR5e + depth camera) and a quadrotor planning/MPC pipeline in Gazebo. Strong in integrating major ROS 2 frameworks (MoveIt/Nav2/RTAB-Map), writing custom packages (URDF, ACADOS-based MPC, laser landmark detection), and optimizing real-time behavior via GPU parallelization and distributed multi-threaded ROS 2 architectures; also contributes to ROS 2 core (structured parameters).

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SK

Mid-level Machine Learning Engineer specializing in industrial deep learning and predictive control

Houston, TX5y exp
oPRO.aiCarnegie Mellon University

AI engineer building and deploying deep-learning-based optimization/control systems for petrochemical plants, with a focus on maintaining operational stability under real-world constraints. Core contributor to model and inference design; introduced a stability-focused non-linear objective and sped up second-layer optimization via on-the-fly first-order approximations. Experienced using Kubernetes for end-to-end testing and effective in translating customer expectations into measurable evaluation plots for non-technical stakeholders.

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MM

Max Matkovski

Screened

Junior Machine Learning Engineer specializing in data pipelines and applied AI

San Francisco Bay Area, CA3y exp
Ontra MobilityGeorgia Tech

Built a production AI agent for phishing fraud detection using n8n orchestration, Claude (Sonnet 4/MCP), VirusTotal, and JavaScript formatting to generate and deliver email-based reports via Gmail. Has experience evaluating detection accuracy against known examples, iterating via feedback, and presenting AI solutions to non-technical teams.

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SS

Shayan Shokri

Screened

Intern ML Engineer specializing in LLMs and NLP research

Seattle, WA0y exp
TruvetaCity University of New York

ML/LLM practitioner with experience at Truveta building an LLM-based evaluation framework; identified non-overlapping evaluator failure modes and proposed an ensemble approach that enabled scaling training data and drove ~5% performance gains across multiple internal projects. Strong focus on robustness to distribution shift (augmentation/domain adaptation/meta-learning) and production reliability via monitoring, drift detection, and safe fallbacks.

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Akashleena Sarkar - Junior Software Engineer specializing in robotics and real-time distributed systems in Mountain View, CA

Junior Software Engineer specializing in robotics and real-time distributed systems

Mountain View, CA2y exp
Intrinsic Innovation LLCUC Santa Cruz

Robotics software engineer focused on low-compute navigation/SLAM: built a 6-DOF SLAM validation pipeline (IMU + 2D LiDAR + ultrasonic) producing ~1cm OctoMap accuracy and deployed it on an Intel Atom by optimizing particle-filter SLAM with a greedy max-likelihood update. Deep ROS 2 experience (executors, composable/lifecycle nodes, QoS, timestamping) plus simulation and deployment tooling (Gazebo C++ plugins, Docker, CI/CD, ROS 2 build farm) and drone navigation work with MAVROS/PX4.

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Syed Daim Ali - Intern Software Engineer specializing in FinTech and AI platforms in Sunnyvale, CA

Syed Daim Ali

Screened

Intern Software Engineer specializing in FinTech and AI platforms

Sunnyvale, CA0y exp
ZoofiUC Berkeley

Systems-focused engineer who built an OS kernel with multithreading, priority scheduling, system calls, and synchronization primitives, and debugged race conditions end-to-end. While not yet hands-on with ROS/SLAM, they clearly connect low-level concurrency and scheduling decisions to deterministic, reliable robotics-style real-time workloads.

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Alp Komban - Junior Machine Learning Engineer specializing in computer vision for medical imaging in Mountain View, CA

Alp Komban

Screened

Junior Machine Learning Engineer specializing in computer vision for medical imaging

Mountain View, CA2y exp
Smartlens Inc.Cornell University

Applied ML/LLM practitioner working in healthcare-facing products, using RAG and LoRA fine-tuning on medical data and implementing production monitoring (confidence scoring) for clinician oversight. Has hands-on experience debugging agentic/LLM pipelines (including OCR preprocessing fixes) and regularly delivers technical demos to doctors, investors, and conferences—contributing to adoption and even helping close a funding round through end-to-end pipeline walkthroughs.

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HH

Mid-level Applied AI Engineer specializing in ML systems, MLOps, and industrial analytics

Toronto, Canada5y exp
FreelanceUniversity of Waterloo

Industrial AI/ML practitioner with experience deploying real-time monitoring and anomaly detection in a regulated Sanofi vaccine manufacturing facility, including root-cause workflows, logging/alerting, and SOP-aligned validation—achieving ~90% faster anomaly detection. Also built Python/NLP-style automation to accelerate instrumentation & control documentation (~40% faster) and delivered end-to-end predictive analytics for an agri-food operations/distribution client using close operator and leadership feedback loops.

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IB

Isean Bhanot

Screened

Junior Robotics Engineer specializing in autonomy, perception, and motion planning

Los Angeles, CA3y exp
Laboratory for Embedded Machines and Ubiquitous Robots (LEMUR)UCLA

Robotics software engineer who built the full control stack for a fleet of manufacturing/repair robots in Relativity Space R&D (perception, planning, motion control, integration, deployment). Has ROS/ROS 2 experience spanning custom SLAM (LiDAR+IMU), multi-robot coordination, and multi-drone control (Pixhawk 4, minimum-snap trajectories), with strong real-world debugging and simulation/CI testing practices (Gazebo, CI/CD, some Docker).

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AP

Akash Patil

Screened

Mid-Level Software Engineer specializing in backend systems and LLM/RAG applications

5y exp
IntuitNorthern Illinois University

Backend/AI engineer at Intuit who built a production AI-powered case assistant for support agents (FastAPI on AWS EKS) combining Postgres case data, OpenSearch retrieval with embedding reranking, and internal LLMs. Improved peak-season reliability by diagnosing P95/P99 timeout spikes and cutting P95 latency from ~800ms to <400ms via composite indexing, keyset pagination, connection pool tuning, and caching, while adding grounded-generation guardrails (evidence packs, confidence thresholds, fallbacks, human-in-the-loop).

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HS

Haider Shah

Screened

Principal AI/ML Architect specializing in GenAI, LLMs, RAG, and Agentic AI

California, USA13y exp
PineconePreston University

FinTech/AI engineer who has shipped an end-to-end discrepancy-detection product for financial managers using Next.js, FastAPI/GraphQL, Pinecone, and AWS (with dev/staging/prod, observability, A/B testing, and documentation). Also built an AI-native “AI Genesis” system with agentic cyclic workflows, routing, and tool use, and has experience modernizing legacy systems via the strangler fig pattern while coordinating with senior stakeholders on a 5G autonomous simulation platform.

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Ho-Wei Lu - Junior Robotics Engineer specializing in motion planning and control in Berkeley, USA

Ho-Wei Lu

Screened

Junior Robotics Engineer specializing in motion planning and control

Berkeley, USA1y exp
University of California, BerkeleyUC Berkeley

Robotics software engineer who built a ROS2-based ping-pong ball interception system on a 7-DOF Sawyer arm, spanning real-time vision, trajectory prediction, and an MPC joint-velocity controller to hit a flying ball within ~1 second. Demonstrated strong real-time debugging and systems integration skills (timestamp-based latency analysis, event-based redesign, ROS2 QoS tuning) and is currently working with Isaac Sim in Docker with GitHub-based CI/CD for assembly-task simulation.

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Ayush Gupta - Mid-level AI Engineer specializing in Agentic AI and Generative AI

Ayush Gupta

Screened

Mid-level AI Engineer specializing in Agentic AI and Generative AI

6y exp
GeolabeDuke University

Built and deployed a live LLM-powered platform that takes a LinkedIn job URL + resume and generates job-specific resumes and personalized outreach at scale, with production-grade logging/monitoring/retries on Vercel + Railway. Experienced with agent orchestration (AWS Bedrock/Strands, LangGraph, CrewAI) and rigorous AI workflow testing, plus stakeholder-facing prototypes like data lineage/metadata and NL-to-SQL + dashboard generation.

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Priyanshu Maurya - Mid-level Data Scientist specializing in insurance, finance, and healthcare analytics in New York, NY

Mid-level Data Scientist specializing in insurance, finance, and healthcare analytics

New York, NY3y exp
MetLifeRowan University

Built and productionized LLM-driven sentiment scoring for earnings call transcripts at Goldman Sachs, replacing legacy NLP to deliver a cleaner trading signal while managing latency/cost via batching, caching, and distilled models. Also implemented an Airflow-orchestrated fraud modeling pipeline at MetLife with drift-based retraining and SageMaker deployment, and has a disciplined evaluation/rollout framework for reliable AI workflows.

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SM

Sean Membrido

Screened

Intern Software Engineer specializing in AI/ML and full-stack development

New York City, NY1y exp
GeminiUC Santa Cruz

Full-stack engineer with fintech and AI product experience: built HuddleAI end-to-end on Firebase/React, including a serverless LLM meeting-intelligence pipeline (FFmpeg + Google Speech-to-Text + GPT-4 with schema validation) and Slack notifications. At Gemini, owned a Postgres/Scala workflow change for wire deposit approvals that cut blocked registrations by 60% and emphasized correctness/compliance in UK/EU transaction-state UI.

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SP

Satya Pithani

Screened

Mid-level AI/ML Engineer specializing in healthcare and financial analytics

Texas, USA4y exp
Oracle HealthUniversity of Texas at Dallas

ML engineer with production experience across healthcare and fraud domains, including end-to-end ownership of a telecare patient deterioration system at Oracle Health and a GPT-4/RAG fraud reporting solution at Cognizant. Stands out for combining scalable data/ML infrastructure, clinical NLP, and GenAI delivery with measurable gains in model quality and workflow efficiency.

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NC

Senior Full-Stack Engineer specializing in AI and cloud-native applications

Lakeland, FL8y exp
Revscale AIUC Irvine

Built and shipped a production LLM-powered internal developer tool that accelerated code reviews by about 30% while maintaining reliability through modular orchestration, validation, and monitoring. Demonstrates strong practical depth in agent architecture, backend workflow orchestration, and observability for non-deterministic AI systems, with concrete examples of reducing agent errors by 60%.

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YV

Yash Vishe

Screened

Junior Software Engineer specializing in LLM systems, data engineering, and ML

San Diego, CA2y exp
San Diego Supercomputer CenterUC San Diego

Backend/ML systems engineer with experience at SDSC, UCSD, and Media.net, building production semantic dataset/model discovery using embeddings + Solr KNN and LLM-based intent/reranking at 5M+ dataset scale. Emphasizes offline/online separation for predictable serving, has delivered measurable gains (23% retrieval accuracy, 38% latency reduction) and helped secure a $3M+ NSF grant.

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NU

Mid-level Robotics Software Engineer specializing in autonomy, ROS2, and SLAM

Itasca, IL4y exp
SabantoCarnegie Mellon University

Robotics software engineer leading an autonomy stack migration from ROS1 to ROS2, including a custom-built global parameter server to preserve existing infrastructure while shipping continuous production releases. Hands-on across navigation/safety/monitoring packages, control (ROS2 PID for steering/speed), and localization performance work (particle filter optimization), with strong ownership of CI-driven test strategy and release quality.

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SS

Sayuj Shah

Screened

Mid-level Data Analyst & AI Practitioner specializing in ML, LLMs, and analytics platforms

Schaumburg, IL4y exp
U.S. CellularGeorgia Tech

Data Analyst at U.S. Cellular who built production LLM solutions, including a Tableau-embedded chatbot that converts natural language questions into Oracle SQL and returns actionable KPI insights for non-technical users. Also authored MAD-CTI, a multi-agent LLM system for dark web hacker forum threat intelligence (published in IEEE Access) that outperformed single-agent approaches by 14%.

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DK

David Kidwell

Screened

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

New York, NY10y exp
Canoe IntelligenceBinghamton University

Applied LLMs and a graph-RAG architecture in Neo4j to automate an accounting firm's cross-checking of transactional books against tax regulations, indexing 1,000+ pages into a knowledge graph with vector search. Combines agentic LLM workflows with classical NER (Hugging Face/NLTK) and validates using expert-labeled held-out data plus precision/recall and measured accountant time savings after deployment.

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Pratik Jaiswal - Mid-level AI/ML Engineer specializing in financial services ML and MLOps in Remote, USA

Mid-level AI/ML Engineer specializing in financial services ML and MLOps

Remote, USA4y exp
M&T BankUniversity of South Florida

ML engineer/data scientist with M&T Bank experience who built a production reinforcement-learning portfolio analytics tool for wealth management, emphasizing near real-time performance via batch/serving separation and robust generalization through stress-scenario backtesting and RL regularization. Strong MLOps background (Airflow, Grafana, MLflow) and proven ability to drive adoption with non-technical stakeholders using KPI alignment and SHAP-based explanations.

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