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Course Outline
Introduction to BigQuery
- BigQuery architecture and core features
- Cost models and pricing structures
- Overview of query execution mechanisms and storage
Query Optimization and Cost Reduction
- Techniques for query tuning
- Implementation of partitioned and clustered tables
- Monitoring and analyzing query performance
- Hands-on lab: optimizing queries for cost efficiency
Data Ingestion and Transformation
- Loading data from diverse external sources
- Utilizing Dataflow and Dataprep for ETL processes
- Materialized views and scheduled queries
- Hands-on lab: constructing a reporting pipeline
Introduction to BigQuery ML
- Overview of machine learning capabilities within BigQuery
- Supported model types, including linear regression, logistic regression, and clustering
- SQL syntax for defining ML models
- Hands-on lab: creating and training a model
Developing Predictive Models with BigQuery ML
- Training and evaluating models
- Applying ML.EVALUATE and ML.PREDICT functions
- Integrating predictions into reports
- Hands-on lab: predictive analytics workflow
Best Practices for Enterprise Analytics
- Governance and access control
- Managing large datasets at scale
- Strategies for cost control
- Case studies of successful enterprise implementations
Summary and Next Steps
Requirements
- Fundamental understanding of SQL
- Familiarity with data management concepts
- Experience with reporting or analytics tools
Audience
- Data analysts
- BI developers
- Data engineers
14 Hours
Testimonials (2)
The final day which is the Machine Learning Topic
John Erick Baltazar - Globe Telecom
Course - Google BigQuery
It was a really good training course, well prepared and explained by the trainer with great hands on experience on GCP.