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Seminar mit gesichertem Termin

Splunk for Analytics and Data Science (SADS)

Seminardauer: 2 Tage

Ziele der Schulung

This 13.5-hour course is for users who want to attain operational intelligence level 4, (business insights) and covers implementing analytics and data science projects using Splunk's statistics, machine learning, built-in and custom visualization capabilities.

Please note that this course may run over three days, with 4.5 hour sessions each day.

Zielgruppe Seminar

  • Splunk Analysten / Business Intelligence-Teams
  • Data Scientists / Machine Learning Engineers innerhalb von Splunk-Umgebungen
  • Fortgeschrittene Splunk Power User

Voraussetzungen

To be successful, students should have a solid understanding of the following courses:

  • Intro to Splunk
  • Using Fields (SUF)
  • Scheduling Reports & Alerts
  • Visualizations
  • Working with Time (WWT)
  • Statistical Processing (SSP)
  • Comparing Values (SCV)
  • Result Modification (SRM)
  • Leveraging Lookups and Subsearches (LLS)
  • Correlation Analysis (SCLAS)
  • Search Under the Hood
  • Intro to Knowledge Objects
  • Creating Field Extractions (CFE)
  • Search Optimization (SSO)
  • Exploring and Analyzing Data with Splunk (EADS)

Lernmethodik

The training offers you a balanced mix of theory and practice in a first-class learning environment. Benefit from direct exchange with our experienced trainers and other participants to maximize your learning success.

Seminarinhalt

Analytics Workflow

  • Define terms related to analytics and data science
  • Describe the analytics workflow
  • Describe common usage scenarios
  • Navigate Splunk Machine Learning Toolkit

Training and Testing Models

  • Split data for testing and training using the sample command
  • Describe the fit and apply commands
  • Use the score command to evaluate models

Regression: Predict Numerical Values

  • Differentiate predictions from estimates
  • Identify prediction algorithms and assumptions
  • Model numeric predictions in the MLTK and Splunk Enterprise

Clean and Preprocess the Data

  • Define preprocessing and describe its purpose
  • Describe algorithms that preprocess data for use in models
  • Use FieldSelector to choose relevant fields
  • Use PCA and ICA to reduce dimensionality
  • Normalize data with StandardScaler and RobustScaler
  • Preprocess text using Imputer, NPR, TF-IDF, and HashingVectorizer

Clustering

  • Define Clustering
  • Identify clustering methods, algorithms, and use cases
  • Use Smart Clustering Assistant to cluster data
  • Evaluate clusters using silhouette score
  • Validate cluster coherence
  • Describe clustering best practices

Forecasting Fields

  • Differentiate predictions from forecasts
  • Use the Smart Forecasting Assistant
  • Use the StateSpaceForecast algorithm
  • Forecast multivariate data
  • Account for periodicity in each time series

Detect Anomalies

  • Define anomaly detection and outliers
  • Identify anomaly detection use cases
  • Use Splunk Machine Learning Toolkit Smart Outlier Assistant
  • Detect anomalies using the Density Function algorithm
  • View results with the Distribution Plot visualization

Classify: Predict Categorical Values

  • Define key classification terms
  • Identify when to use different classification algorithms
  • Evaluate classifier tradeoffs
  • Evaluate results of multiple algorithms

Hinweise

Partner

Dieses Seminar bieten wir in Kooperation mit unserem Splunk Learning Partner Fast Lane Institute for Knowledge Transfer GmbH an.

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Gesicherte Kurstermine

       
19.10. - 20.10.2026 München Buchen
19.10. - 20.10.2026 Virtual Classroom (online) Buchen
23.11. - 24.11.2026 Berlin Buchen
23.11. - 24.11.2026 Virtual Classroom (online) Buchen
 
4 Gesicherte Termine
19.10. - 20.10.2026 in München
19.10. - 20.10.2026 in Virtual Classroom (online)
23.11. - 24.11.2026 in Berlin
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1.) Wählen Sie den Seminartyp:


2.) Wählen Sie Ort und Datum:
1.500,00 € Preis pro Personspacing line1.785,00 € inkl. 19% MwSt
all incl.
zzgl. Verpflegung 30,00 €/Tag bei Präsenz

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