An Interactive 5-Day Training Course

Maintenance Analytics

Leveraging Analytics to Enhance Operational Efficiency

Maintenance Analytics

Course Overview

Maintenance Analytics training course is the application of data-driven techniques to optimize maintenance operations and enhance asset performance. This training course provides a comprehensive overview of maintenance analytics, covering data collection, analysis, and interpretation to drive informed decision-making. 

Participants will learn how to leverage maintenance data to predict equipment failures, optimize maintenance schedules, and reduce downtime. Through a combination of theoretical knowledge and practical exercises, attendees will develop the skills necessary to implement maintenance analytics within their organizations.

Training Objectives

Upon completion of this Maintenance Analytics training course, participants will be able to:

  • Understand the fundamentals of maintenance analytics and its role in asset management.
  • Identify and collect relevant maintenance data for analysis.
  • Apply data analysis techniques to extract valuable insights from maintenance data.
  • Develop predictive maintenance models to optimize maintenance schedules.
  • Calculate key performance indicators (KPIs) to measure maintenance performance.
  • Utilize maintenance analytics to improve asset reliability and reduce maintenance costs.
  • Communicate analytical findings effectively to stakeholders.

Training Methodology

The Maintenance Analytics training course will employ a blended learning approach, combining classroom instruction, hands-on exercises, and case studies. Participants will have the opportunity to work with real-world maintenance data using industry-standard analytics tools. The training course will be interactive, encouraging active participation and discussion among attendees.

Organisational Impact

By implementing this training course, organizations can expect the following benefits:

  • Increased equipment reliability and availability
  • Reduced maintenance costs through optimized maintenance schedules
  • Improved decision-making based on data-driven insights
  • Enhanced asset lifecycle management
  • Improved overall equipment effectiveness (OEE)
  • Enhanced risk management through predictive failure analysis
  • Increased operational efficiency and productivity

Personal Impact

Participants who complete this Maintenance Analytics training course will:

  • Develop a strong foundation in maintenance analytics and data-driven decision-making.
  • Gain practical skills in data collection, analysis, and interpretation.
  • Improve their ability to identify maintenance improvement opportunities.
  • Enhance their problem-solving and critical thinking skills.
  • Increase their value to the organization by contributing to cost savings and efficiency improvements.

Who should Attend?

This GLOMACS training course is designed for professionals involved in maintenance and asset management, including:

  • Maintenance managers and supervisors
  • Reliability engineers
  • Asset management professionals
  • Maintenance planners and schedulers
  • Data analysts with an interest in maintenance
  • Engineers and technicians with maintenance responsibilities
  • Individuals looking to develop their data analytics skills for maintenance applications

Training Outline

DAY 1: Introduction to Maintenance Analytics and Data Collection
  • Introduction to maintenance analytics and its benefits
  • Importance of data-driven decision making in maintenance
  • Identifying key performance indicators (KPIs) for maintenance
  • Data sources and types relevant to maintenance (CMMS, ERP, IoT sensors, etc.)
  • Data quality and cleansing techniques
  • Data exploration and visualization using sample maintenance data
  • Introduction to data visualization tools (e.g., Excel, Power BI, Tableau)
  • Creating basic visualizations (charts, graphs, dashboards) to understand maintenance patterns
DAY 2: Descriptive and Diagnostic Analytics
  • Descriptive statistics for maintenance data (mean, median, mode, standard deviation)
  • Data distribution analysis (histogram, box plot)
  • Correlation analysis to identify relationships between variables
  • Time series analysis for maintenance data (trend analysis, seasonality)
  • Root cause analysis techniques (5 Whys, Pareto analysis)
  • Failure mode and effects analysis (FMEA)
DAY 3: Predictive Analytics and Machine Learning
  • Introduction to predictive modeling and its applications in maintenance
  • Data preparation for predictive modeling (feature engineering, normalization)
  • Overview of machine learning algorithms for maintenance (regression, classification, clustering)
  • Model evaluation metrics (accuracy, precision, recall, F1-score)
  • Building a predictive maintenance model using a machine learning tool (e.g., Python, R)
  • Model deployment and monitoring
DAY 4: Prescriptive Analytics and Optimization
  • Introduction to prescriptive analytics and optimization
  • Optimization techniques for maintenance scheduling (linear programming, integer programming)
  • Simulation modeling for maintenance planning
  • Risk-based maintenance (RBM)
  • Implementing prescriptive analytics to optimize maintenance operations
  • Challenges and opportunities in applying prescriptive analytics
DAY 5: Implementation and Organizational Change
  • Developing a maintenance analytics roadmap
  • Change management and stakeholder engagement
  • Overcoming challenges in implementing maintenance analytics
  • Return on investment (ROI) measurement
  • Continuous improvement and monitoring of maintenance analytics
  • Best practices for maintenance analytics
Certificates
  • On successful completion of this training course, GLOMACS Certificate will be awarded to the delegates
  • Continuing Professional Education credits (CPE) : In accordance with the standards of the National Registry of CPE Sponsor, one CPE credit is granted per 50 minutes of attendance
Accreditation

GLOMACS is registered with NASBA as a sponsor of Continuing Professional Education (CPE) on the National Registry of CPE Sponsors. NASBA have final authority on the acceptance of individual courses for CPE credit. Complaints regarding registered sponsors may be submitted to the National Registry of CPE Sponsors through its website: www.learningmarket.org.

All Training Seminars delivered by GLOMACS by default are eligible for CPE Credit.

Providers and Associations

PetroKnowledge
PetroKnowledge
GLOBAL GLOMACS - logo

Additional sessions in international locations

Venue: London - UK
Fee: US $5,950
Date: 21-25 Oct 2024
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Venue: London - UK
Fee: US $5,950
Date: 09-13 Jun 2025
Book a seat
Venue: London - UK
Fee: US $5,950
Date: 20-24 Oct 2025
Book a seat
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