AIML in Engineering Course
Gain expertise in AI/ML applications for engineering using authentic pump datasets. Explore sensor mechanics, feature engineering, predictive maintenance modelling, implementation techniques, and root-cause diagnostics to minimise downtime, enhance dependability, and leverage facility data for assured engineering choices.

from 4 to 360h flexible workload
valid certificate in your country
What will I learn?
This course teaches how to convert raw sensor data into dependable predictive maintenance choices. It covers pump basics, failure patterns, feature creation, time-series analysis, and model assessment for actual industrial sites. Additionally, it includes deployment strategies, risk handling, model interpretability, and root cause investigations to develop effective, proven AI/ML systems that boost operational uptime and reduce maintenance expenses.
Elevify advantages
Develop skills
- Deploy sturdy AI/ML models in industrial settings facing noise, data drift, and limited failure data.
- Create sensor features for pump condition monitoring with time-based, frequency-based, and multi-sensor inputs.
- Develop and test predictive maintenance models using time-sensitive validation methods.
- Convert model predictions into actionable maintenance steps, notifications, and engineering choices.
- Conduct clear root cause investigations connecting ML features to physical equipment faults.
Suggested summary
Before starting, you can change the chapters and workload. Choose which chapter to start with. Add or remove chapters. Increase or decrease the course workload.What our students say
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