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Reactive Publishing
A high-volume telemetry pipeline is only as valuable as its ability to extract signal from noise before failures cascade. Modern distributed systems generate massive streams of operational metrics, but transforming raw time-series data into predictive insights requires a rigorous combination of stream processing architecture, statistical anomaly detection, and automated diagnostics.
Telemetry Analytics & Predictive Engineering with Python provides a comprehensive, hands-on framework for building end-to-end telemetry systems capable of handling real-time data at scale. Moving beyond basic monitoring, this book demonstrates how to design data pipelines, implement real-time stream processing, and deploy predictive models directly into production environments.
What You Will LearnTelemetry Pipeline Architecture: Design robust, low-latency ingestion systems to aggregate metrics, logs, and traces from distributed infrastructure.
Stream Processing Engines: Process continuous time-series data using Python frameworks optimized for stateful stream processing and windowed aggregation.
Advanced Anomaly Detection: Implement statistical, machine learning, and deep learning techniques to identify drift, seasonal spikes, and subtle system anomalies.
Automated System Diagnostics: Correlate telemetry streams to identify root causes and build automated diagnostic models for predictive maintenance.
Production Deployment & Resilience: Scale telemetry pipelines, optimize memory footprint, and ensure fault tolerance under high throughput.
Written for software engineers, systems architects, site reliability engineers, and data scientists, this book bridges the gap between raw data collection and actionable predictive maintenance. Master the technical foundations necessary to transition from reactive monitoring to proactive, automated system health engineering using Python.
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