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Course Outline

Introduction to Predictive AIOps

  • Overview of predictive analytics applications in IT operations
  • Data sources for prediction (logs, metrics, events)
  • Key concepts in time-series forecasting and anomaly detection

Designing Incident Prediction Models

  • Labeling historical incidents and system behaviors
  • Selecting and training models (e.g., LSTM, Random Forest, AutoML)
  • Assessing model accuracy and managing false positives

Data Collection and Feature Engineering

  • Ingesting and aligning log and metric data for model input
  • Extracting features from both structured and unstructured data
  • Addressing noise and missing data within operational pipelines

Automating Root Cause Analysis (RCA)

  • Graph-based correlation of services and infrastructure
  • Utilizing ML to infer probable root causes from event chains
  • Visualizing RCA results through topology-aware dashboards

Remediation and Workflow Automation

  • Integration with automation platforms (e.g., Ansible, Rundeck)
  • Triggering rollbacks, restarts, or traffic redirection
  • Auditing and documenting automated interventions

Scaling Intelligent AIOps Pipelines

  • MLOps for observability: model retraining and version control
  • Executing real-time predictions across distributed nodes
  • Best practices for AIOps deployment in production environments

Case Studies and Practical Applications

  • Analyzing real-world incident data using predictive AIOps models
  • Deploying RCA pipelines with synthetic and production data
  • Review of industry use cases: cloud outages, microservices instability, network degradations

Summary and Next Steps

Requirements

  • Proficiency with monitoring systems such as Prometheus or ELK
  • Practical knowledge of Python and foundational machine learning concepts
  • Familiarity with incident management processes

Target Audience

  • Senior Site Reliability Engineers (SREs)
  • IT Automation Architects
  • DevOps and Observability Platform Leads
 14 Hours

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