This presentation provides an overview of how NVIDIA RAPIDS accelerates data science and data engineering workflows end-to-end. Key topics include leveraging RAPIDS for machine learning, large-scale graph analytics, real-time inference, hyperparameter optimization, and ETL processes. Case studies demonstrate significant performance improvements and cost savings across various industries using RAPIDS for Apache Spark, XGBoost, cuML, and other GPU-accelerated tools. The talk emphasizes the impact of accelerated computing on modern enterprise applications, including LLMs, recommenders, and complex data processing pipelines.
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Speaker
Guilherme Pombo
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talks
AI Solutions Architect
Guilherme is a solutions architect specialising in generative AI for financial services, with hands-on experience in training and deploying large-scale deep-learning systems across industries. At NVIDIA, he develops agentic-AI pipelines engineered for the low-latency and regulation-tight realities of modern finance.
Bio from: Big Data LDN 2025
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