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Vetted Deep Learning Professionals

Pre-screened and vetted.

AP

Mid-level Machine Learning Engineer specializing in optimization, RL, and graph neural networks

San Jose, CA4y exp
Cadence Design SystemsColumbia University
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SK

Mid-level AI & Machine Learning Engineer specializing in computer vision and MLOps

United States6y exp
NVIDIAUniversity of Massachusetts Lowell
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SK

Mid-level AI/ML Engineer specializing in production ML, NLP, and computer vision

USA6y exp
UberUniversity of Maryland, Baltimore County
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TH

Mid-level Machine Learning Research Engineer specializing in foundation models and GenAI

Maryland4y exp
Johns Hopkins University Applied Physics LaboratoryJohns Hopkins University
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RS

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

Parsippany, NJ5y exp
Johnson & JohnsonUniversity of Central Missouri
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VR

Staff Machine Learning Engineer specializing in Generative AI, MLOps, and Computer Vision

18y exp
SyndioUniversity of Nevada, Las Vegas
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ME

Principal AI Platform Architect specializing in agentic AI and enterprise LLM infrastructure

Sunnyvale, CA21y exp
CrowdStrikeUniversity of Massachusetts Boston
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TS

Senior Data Engineer specializing in healthcare ETL/ELT and ML

Pasadena, CA12y exp
Doheny Eye InstituteUniversity of Texas at Austin
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AG

Intern AI/ML Engineer specializing in generative AI and multimodal agentic systems

Boston, MA1y exp
NTT DATANortheastern University
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LB

Mid-level Software Engineer specializing in backend systems, distributed systems, and applied AI

Stony Brook, NY4y exp
Stony Brook UniversityStony Brook University
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VS

Mid-level Software Engineer specializing in cloud-native platforms and healthcare systems

Dallas, TX3y exp
PlayStationUniversity of Texas at Dallas

Backend engineer with healthcare-domain experience building a security-critical RBAC identity/authentication/authorization microservice suite used across hospital imaging platforms (X-Ray, Ultrasound, etc.). Demonstrates strong security mindset (mTLS, cert hygiene, JWT, pen-testing collaboration) and pragmatic scaling/reliability practices (Nginx load balancing, Redis caching, automated tests, canary rollouts).

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IK

Intern Aerospace/Robotics Engineer specializing in GNC, autonomy, and sensor fusion

Champaign, IL3y exp
AndurilUniversity of Illinois Urbana-Champaign

University robotics researcher graduating May 2026 who integrated an Intel RealSense D435i onto a TurtleBot3 (Jetson Nano) and built a ROS 2 node + OpenCV pipeline to feed color-based cues into navigation/path planning for RL grid-world experiments. Has hands-on ROS 2 experience spanning Gazebo simulation, Nav2, ros2_control, multi-robot namespacing, and ROS1-to-ROS2 bridging, plus CI/CD exposure (GitLab CI, Jenkins) from internships including aircraft navigation work.

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TA

Mid-level Robotics Engineer specializing in SLAM, perception, and state estimation

4y exp
General MotorsUniversity of Michigan

Robotics software lead with 4+ years of ROS/ROS2 experience spanning a startup (Inductive Robotics) and General Motors, building autonomous mobile manipulation and AMR material-handling stacks. Has hands-on depth in SLAM/navigation (Cartographer/Nav2), perception, and simulation, and has directly modified Cartographer to handle real-world sensor dropouts. Currently working on fleet-scale mapping capabilities (map merging/editing, trajectory pruning) for multi-robot deployments.

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VP

Vismay Patel

Screened

Senior AI & Machine Learning Engineer specializing in NLP, GenAI, and MLOps

Berkeley, CA7y exp
Kaiser PermanenteSan Francisco State University

ML/GenAI practitioner with healthcare domain depth who built and deployed a production cervical-cancer EMR classification system using a hybrid rules + medical BERT approach, optimized for high recall under severe class imbalance and PHI constraints. Experienced running end-to-end production ML/LLM pipelines with Apache Airflow (validation, promotion/rollback, monitoring, retraining) and partnering closely with clinicians to calibrate thresholds and implement human-in-the-loop review.

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DV

Senior Software Engineer specializing in cloud backend systems and LLM-powered agents

Seattle, WA5y exp
AmazonSan José State University

Amazon Fire TV Devices engineer who built and shipped a production LLM-powered lab triage and validation system that grounds recommendations in internal runbooks/known-issue data and pushes evidence-based actions via dashboards and Slack. Emphasizes safety and measurability with structured JSON outputs, replay-based evaluation on historical incidents, and production metrics (e.g., disagreement rate and time-to-first-action), plus cost/latency optimizations like caching, batching, and rule-based fast paths.

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AC

Mid-level AI/ML Engineer specializing in LLM applications and cloud-native systems

Remote2y exp
PYRAMYDCarnegie Mellon University

LLM engineer who has shipped production AI systems, including an RFP requirements extraction platform (OpenAI o4-mini + Azure AI Search + FastAPI) achieving 90%+ accuracy and ~5x throughput through grounding, structured outputs, parallelization, and caching. Also partnered with legal/compliance stakeholders at Nexteer Automotive to deliver an AI document comparison tool with traceability and confidence indicators, adopted by non-technical users and saving ~2 FTEs of review time.

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NK

Nandini Kosgi

Screened

Mid-level AI/ML Engineer specializing in LLMs, RAG, and fraud/risk analytics in Financial Services

PA, USA4y exp
Capital OneRobert Morris University

Built and shipped a production-grade GenAI Fraud & Compliance Investigation Copilot for a large US bank, integrating OCR docs, structured data, and prior case history to generate grounded, regulator-friendly summaries and red-flag highlights. Demonstrates strong end-to-end LLM systems engineering (LangGraph/LangChain, hybrid retrieval with FAISS+BM25, guardrails/citations, streaming/latency optimization) plus rigorous evaluation and close partnership with compliance stakeholders.

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SS

Sahithi S

Screened

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

Texas, USA6y exp
NVIDIAKennesaw State University

Built and deployed a production generative AI chatbot at NVIDIA using LangChain + GPT-3 integrated with internal data sources, cutting response time nearly in half and improving CSAT by ~12 points. Also delivered LLM-driven QA tools by fine-tuning Hugging Face transformer models and deploying via an AWS-based pipeline (Lambda/Glue/S3) with orchestration (Airflow/Step Functions), CI/CD, Kubernetes, and monitoring (MLflow/Splunk/Power BI).

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BP

Byron Pineda

Screened

Staff/Lead Data Scientist specializing in Generative AI, NLP/LLMs, and MLOps

Pascagoula, MS10y exp
TuringMississippi State University

Lead Data Scientist (10+ years) with recent work in healthcare data: built production pipelines that unify EHR, genomics, and clinical notes using NLP (spaCy/BERT/BioBERT) and scalable Spark-based processing. Also led development of domain-specific LLM/NLP systems for chatbots and semantic search, deploying models via FastAPI/Flask and improving retrieval with FAISS-backed, fine-tuned clinical embeddings and RAG-style workflows.

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RR

Mid-level AI/ML Engineer specializing in Generative AI and MLOps

Remote, USA5y exp
McKinsey & CompanyUniversity of North Texas

GenAI/LLM engineer and architect who built and deployed a production generative AI financial forecasting and scenario analysis platform at McKinsey, leveraging Claude (Anthropic), LangChain, Airflow, MLflow, and AWS SageMaker. Demonstrates strong LLMOps/MLOps rigor (monitoring, drift detection, automated retraining) and deep experience implementing global privacy controls (GDPR, differential privacy, audit trails) while partnering closely with finance executives and legal/IT stakeholders.

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TS

Senior Data Scientist / ML Engineer specializing in GenAI, LLMs, and NLP

Texarkana, TX10y exp
TredenceUniversity of Texas at Austin

ML/NLP engineer focused on production GenAI and data linking systems: built a large-scale RAG pipeline over millions of support docs using LangChain/Pinecone and added a LangGraph-based validation layer to cut hallucinations ~40%. Also built scalable PySpark entity resolution (95%+ accuracy) and fine-tuned Sentence-BERT embeddings with contrastive learning for ~30% relevance lift, with strong CI/CD and observability practices (OpenTelemetry, Prometheus/Grafana).

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