Power and Energy Machine Learning Data Course
At a glance
- Duration
- 5 days
- Format
- Classroom
- Cities
- Casablanca, Athens, Manama, Tashkent, Barcelona, Jakarta and more
- Next session
- 12 – 16 October 2026, Casablanca
- Average fee
- 7,550 €
Overview
Power and Energy Machine Learning Data Management Course is a five-day intermediate course for power-generation, grid, utility, renewable-energy, asset, reliability, data, and operations professionals, who leave with a Power and Energy ML Data-to-Decision Pack. Participants connect operational data, quality, time-series preparation, forecasting, anomaly detection, predictive maintenance, monitoring, and human decisions without building production models. The course supports evidence-based use of machine learning in energy operations. Agile Leaders Training Center provides training in power and energy machine learning data management.
Who Should Attend
- Teams responsible for generation, grid, utility, or renewable-energy operations
- Teams responsible for asset reliability and predictive maintenance decisions
- Teams responsible for operational data, historians, meters, and sensors
- Teams responsible for forecasting, planning, and performance analysis
- Teams responsible for analytics governance, monitoring, and operational risk
The course assumes participants work with energy operations or data and leaves out model coding, control-system configuration, protection engineering, market trading, certification, and autonomous operational control.
Departments and Industries
The course supports machine-learning evaluation across power generation, transmission, distribution, renewable energy, utilities, industrial energy, and asset services.
- Generation operations, performance, and maintenance
- Transmission, distribution, and grid control support
- Renewable forecasting and integration planning
- Asset management, reliability, and condition monitoring
- Data engineering, analytics, cybersecurity liaison, and governance
Learning Objectives
By the end of this course, participants will be able to:
- Analyze energy data sources, context, quality, and ownership
- Build time-series preparation and data-readiness profiles
- Evaluate forecasting, anomaly, and predictive-maintenance evidence
- Compare model uncertainty, errors, drift, and operational impacts
- Apply monitoring, governance, and human decision controls
- Build a Power and Energy ML Data-to-Decision Pack
Course Agenda
Day 1: Energy Data and ML Use Cases
- Power and Energy ML Use Case Canvas
- Generation, Grid, Meter, Weather, and Asset Data Map
- Operational Technology and Information Technology Boundary
- Forecast, Detect, Diagnose, Prioritize, and Optimize Task Matrix
- Human Decision Authority and Accountability Canvas
Day 2: Data Quality and Time Series
- Time-Series Timestamp, Interval, and Alignment Check
- Missing Measurement and Bad-Data Treatment Guide
- Data Provenance, Context, Units, and Lineage Profile
- Seasonality, Weather, Load, and Event Feature Map
- Energy ML Data-Readiness Scorecard
Day 3: Forecasting and Anomaly Evidence
- Load and Renewable Forecast Evaluation Sheet
- Baseline, Horizon, and Forecast Error Comparison
- Anomaly and Fault Detection Signal Review
- False Alarm and Missed Event Impact Matrix
- State Estimation and Situational Awareness Questions
Day 4: Predictive Maintenance and Model Control
- Asset Condition and Failure Mode Data Link
- Predictive Maintenance Lead-Time Decision Map
- Uncertainty, Generalization, and Operational Limitations
- Model Drift and Performance Monitoring Plan
- Cybersecurity, Change, Escalation, and Human Override Controls
Day 5: Energy ML Decision Practice
- Suggested Exercise: Profile an Energy Time-Series Dataset
- Suggested Exercise: Review a Forecast and Error Pattern
- Suggested Exercise: Triage Anomaly and Maintenance Signals
- Suggested Exercise: Define Monitoring and Escalation Controls
- Capstone Exercise: Power and Energy ML Data-to-Decision Pack
Practical Exercises
The course uses suggested activities to connect energy data and model outputs to accountable operational decisions.
- Suggested activity: frame an energy use case with the decision, data sources, operational context, owners, and exclusions
- Suggested activity: profile time-series data for timestamps, gaps, units, seasonality, events, lineage, and readiness
- Suggested activity: review forecast or anomaly evidence with baselines, errors, uncertainty, and operational consequences
- Suggested activity: assemble a decision pack covering maintenance action, model monitoring, cybersecurity, change, override, and escalation
FAQs
Who suits power and energy machine learning data management training, and what does it assume?
The course suits generation, grid, utility, renewable, reliability, asset, data, and operations teams. It assumes familiarity with energy processes or operational data but not programming or machine-learning development.
How does energy machine learning data management differ from data science training?
Energy machine learning data management focuses on operational context, data readiness, forecast and anomaly evidence, maintenance decisions, monitoring, and governance. Data science training focuses on coding, algorithms, feature engineering, model tuning, and deployment.
What data supports machine learning in power and energy operations?
Relevant sources may include plant historians, supervisory systems, meters, sensors, weather, maintenance records, asset registries, alarms, outages, market or demand data, and operator logs, subject to quality, access, context, and security controls.
Why must energy ML models be monitored after deployment?
Operating conditions, assets, sensors, data pipelines, weather, demand, and maintenance practices change. Monitoring detects declining performance, drift, data failures, unreliable alerts, and conditions that require investigation, retraining, restriction, or human override.
Conclusion
Participants take back a Power and Energy ML Data-to-Decision Pack linking use cases, sources, time-series readiness, forecasting, anomaly evidence, maintenance signals, uncertainty, monitoring, cybersecurity, decision authority, and escalation. It improves collaboration between operational and data teams. It preserves accountable human control over energy decisions.
credits: 5 credit per day
Course Mode: full-time
Provider: Agile Leaders Training Center
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Events for this Course
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Casablanca 12 – 16 October 2026
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Athens 12 – 16 October 2026
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Manama 18 – 22 October 2026
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Tashkent 1 – 5 November 2026
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Barcelona 2 – 6 November 2026
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Zoom 9 – 13 November 2026
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Jakarta 9 – 13 November 2026
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Istanbul 16 – 20 November 2026
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London 23 – 27 November 2026
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Nice 23 – 27 November 2026
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Geneva 29 November – 3 December 2026
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Kuala Lumpur 14 – 18 December 2026
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Abu Dhabi 14 – 18 December 2026
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Cairo 21 – 25 December 2026
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Montreux 21 – 25 December 2026
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Porto 28 December 2026 – 1 January 2027
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Prague 4 – 8 January 2027
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Baku 11 – 15 January 2027
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Bangkok 17 – 21 January 2027
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Nairobi 24 – 28 January 2027
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Amman 31 January – 4 February 2027
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Amsterdam 1 – 5 February 2027
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Phuket 7 – 11 February 2027
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Doha 14 – 18 February 2027
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London 15 – 19 February 2027
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Lisbon 22 – 26 February 2027
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Kuwait 28 February – 4 March 2027
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Dubai 8 – 12 March 2027
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Rome 15 – 19 March 2027
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New York 29 March – 2 April 2027
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Cape town 11 – 15 April 2027
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Trabzon 18 – 22 April 2027
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Vienna 19 – 23 April 2027
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Tokyo 26 – 30 April 2027
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Accra 2 – 6 May 2027
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Dubai 10 – 14 May 2027
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Seoul 10 – 14 May 2027
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Riyadh 16 – 20 May 2027
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Zanzibar 30 May – 3 June 2027
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Bali 6 – 10 June 2027
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Berlin 21 – 25 June 2027
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Frankfurt 28 June – 2 July 2027
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Al Jubail 4 – 8 July 2027
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Paris 5 – 9 July 2027
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Sharm El-Sheikh 19 – 23 July 2027
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Milan 19 – 23 July 2027
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Singapore 26 – 30 July 2027
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Chicago 1 – 5 August 2027
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Tbilisi 2 – 6 August 2027
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Madrid 9 – 13 August 2027
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San Diego 23 – 27 August 2027
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Marbella 29 August – 2 September 2027
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Johannesburg 5 – 9 September 2027
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Langkawi 12 – 16 September 2027
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Muscat 19 – 23 September 2027
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Toronto 26 – 30 September 2027
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Munich 4 – 8 October 2027
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Abu Dhabi 11 – 15 October 2027
| Image | Location | Dates | Duration | Mode | Price | Actions |
|---|---|---|---|---|---|---|
|
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Amman |
Week 04, 2027 31 January – 4 February 2027 |
5 Days | Onsite | €6,000 | |
|
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Amsterdam |
Week 05, 2027 1 – 5 February 2027 |
5 Days | Onsite | €6,500 | |
|
|
Phuket |
Week 05, 2027 7 – 11 February 2027 |
5 Days | Onsite | €8,000 | |
|
|
Doha |
Week 06, 2027 14 – 18 February 2027 |
5 Days | Onsite | €7,000 | |
|
|
London |
Week 07, 2027 15 – 19 February 2027 |
5 Days | Onsite | €6,500 | |
|
|
Lisbon |
Week 08, 2027 22 – 26 February 2027 |
5 Days | Onsite | €6,500 | |
|
|
Kuwait |
Week 08, 2027 28 February – 4 March 2027 |
5 Days | Onsite | €7,000 | |
|
|
Dubai |
Week 10, 2027 8 – 12 March 2027 |
5 Days | Onsite | €6,500 | |
|
|
Rome |
Week 11, 2027 15 – 19 March 2027 |
5 Days | Onsite | €6,500 | |
|
|
New York |
Week 13, 2027 29 March – 2 April 2027 |
5 Days | Onsite | €16,000 | |
|
|
Cape town |
Week 14, 2027 11 – 15 April 2027 |
5 Days | Onsite | €6,000 | |
|
|
Trabzon |
Week 15, 2027 18 – 22 April 2027 |
5 Days | Onsite | €8,000 | |
|
|
Vienna |
Week 16, 2027 19 – 23 April 2027 |
5 Days | Onsite | €7,500 | |
|
|
Tokyo |
Week 17, 2027 26 – 30 April 2027 |
5 Days | Onsite | €12,000 | |
|
|
Accra |
Week 17, 2027 2 – 6 May 2027 |
5 Days | Onsite | €6,000 | |
|
|
Dubai |
Week 19, 2027 10 – 14 May 2027 |
5 Days | Onsite | €6,500 | |
|
|
Seoul |
Week 19, 2027 10 – 14 May 2027 |
5 Days | Onsite | €12,000 | |
|
|
Riyadh |
Week 19, 2027 16 – 20 May 2027 |
5 Days | Onsite | €7,500 | |
|
|
Zanzibar |
Week 21, 2027 30 May – 3 June 2027 |
5 Days | Onsite | €6,000 | |
|
|
Bali |
Week 22, 2027 6 – 10 June 2027 |
5 Days | Onsite | €6,500 |
Frequently asked questions
What does this course cover?
OverviewPower and Energy Machine Learning Data Management Course is a five-day intermediate course for power-generation, grid, utility, renewable-energy, asset, reliability, data, and operations professionals, who leave with a Power and Energy ML Data-to-Decision Pack. Participants connect operational data, quality, time-series preparation, forecasting, a…
Are training dates available?
Yes. Available dates and destinations are listed in the course dates section on this page.
How can I register?
Choose an available date on this page and complete the registration form, or send a programme enquiry.
Can I download the course brochure?
Yes. Use the brochure download link provided on this page.
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