Applied Drilling Analytics using Python
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For PEA Members Only
Python for Drilling: Introduction Workshop" is a hands-on, beginner-friendly training designed to introduce drilling professionals to the power of Python for data analysis, automation, and decision-making in drilling operations. Whether you're looking to automate repetitive tasks, analyze real-time drilling parameters, or visualize operational trends, this workshop will equip you with the foundational tools to get started.
Workshop Objectives
Reading and processing drilling data (e.g., depth, WOB, RPM, ROP)
Introduction to data visualization with libraries like Matplotlib and Seaborn
Connecting Python to drilling domain
Basic drilling statistics and analytics
Well trajectory visualization
Introduction to well log LAS file visualization
About the Presenter
Mr. Nashat Jumaah Omar - 12+Years of Experience In Oil & Gas Industry
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Data Science and Applied Machine Learning for Reservoir & Production Engineering
Data Science and Applied Machine Learning for Reservoir & Production Engineering is a practical workshop designed to help petroleum professionals use data-driven methods to solve real engineering problems. The workshop focuses on how machine learning and data science can be applied to reservoir characterization, production forecasting, well performance analysis, and workflow automation in upstream operations.The workshop is built around industry-relevant use cases, with an emphasis on turning engineering data into actionable insight. Participants will learn how data science techniques can support faster analysis, improve prediction quality, and enhance decision-making in reservoir and production engineering workflows.All content in this session is copyrighted by Mr. Nashat. Access to recordings, slides, and the Excel workbook is provided exclusively through this platform. Any unauthorized use, reproduction, or distribution outside the portal is strictly prohibited and may result in legal action under applicable laws.Recordings, data sets, and certificates will be provided within one business day after the event is completed.