Microsoft SQL Server 2019 – Big Data Training Course
Original price was: £119.00.£71.00Current price is: £71.00. inc VAT
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What the Microsoft SQL Server 2019 – Big Data course covers
Microsoft SQL Server 2019 – Big Data is taught entirely online, so there is nothing to attend and no start date to wait for. 8 modules, 7 hours of study, and no deadline on either. The 12 months of access matter more than they sound: refresher reading before an inspection or an appraisal is free.
The material takes in Big Data Cluster Architecture, Deployment of Big Data Clusters, Loading and Querying Data in Big Data Clusters and Working with Spark in Big Data Clusters. Another 4 modules follow, and the Modules tab lists every one of them.
There are no entry requirements, and it is pitched at people who need the subject for work rather than at exam candidates. We list 18 Microsoft & Data courses, of which 12 sit at Professional development. Its study time is about mid-range for the subject. You finish with a certificate of completion you can download immediately. It evidences the training rather than being an Ofqual-recognised qualification.
Worth knowing before you buy: There is no CPD accreditation attached, which matters only if somebody has specifically asked you for it.
Full course details from the training provider
This course focuses on one of SQL Server 2019’s most impactful features—Big Data Clusters. You will learn about data virtualization and data lakes for this complete artificial intelligence (AI) and machine learning (ML) platform within the SQL Server database engine.
You will be shown how to use Big Data Clusters to combine large volumes of streaming data for analysis along with data stored in a traditional database. For instance, you can stream large volumes of data from Apache Spark in real-time while executing Transact-SQL queries to bring in relevant additional data from your corporate, SQL Server database.
This course provides everything necessary to get started working with Big Data Clusters in SQL Server 2019. You will learn about the architectural foundations that are made up from Kubernetes, Spark, HDFS, and SQL Server on Linux. You will be shown how to configure and deploy Big Data Clusters. You will be ready to use and unveil the full potential of SQL Server 2019: combining different types of data spread across widely disparate sources into a single view that is useful for business intelligence and machine learning analysis.
- What a Big Data Cluster is
- How to deploy BDC
- How to analyze large volumes of data directly from SQL Server
- How to analyze large volumes of data via Apache Spark
- How to manage data stored in HDFS from SQL Server as if it were relational data
- How to implement advanced analytics solutions through machine learning
- How to expose different data sources as a single logical source using data virtualization
Course Video Content: 7 Hours 6 Minutes
Test Questions: 75
Microsoft SQL Server 2019 – Big Data course content
Module 1: What are Big Data Clusters?
1.1 Introduction
1.2 Linux, PolyBase, and Active Directory
1.3 Scenarios
Module 2: Big Data Cluster Architecture
2.1 Introduction
2.2 Docker
2.3 Kubernetes
2.4 Hadoop and Spark
2.5 Components
2.6 Endpoints
Module 3: Deployment of Big Data Clusters
3.1 Introduction
3.2 Install Prerequisites
3.3 Deploy Kubernetes
3.4 Deploy BDC
3.5 Monitor and Verify Deployment
Module 4: Loading and Querying Data in Big Data Clusters
4.1 Introduction
4.2 HDFS with Curl
4.3 Loading Data with T-SQL
4.4 Virtualizing Data
4.5 Restoring a Database
Module 5: Working with Spark in Big Data Clusters
5.1 Introduction
5.2 What is Spark
5.3 Submitting Spark Jobs
5.4 Running Spark Jobs via Notebooks
5.5 Transforming CSV
5.6 Spark-SQL
5.7 Spark to SQL ETL
Module 6: Machine Learning on Big Data Clusters
6.1 Introduction
6.2 Machine Learning Services
6.3 Using MLeap
6.4 Using Python
6.5 Using R
Module 7: Create and Consume Big Data Cluster Apps
7.1 Introduction
7.2 Deploying, Running, Consuming, and Monitoring an App
7.3 Python Example – Deploy with azdata and Monitoring
7.4 R Example – Deploy with VS Code and Consume with Postman
7.5 MLeap Example – Create a yaml file
7.6 SSIS Example – Implement scheduled execution of a DB backup
Module 8: Maintenance of Big Data Clusters
8.1 Introduction
8.2 Monitoring
8.3 Managing and Automation
8.4 Course Wrap Up
Learning outcomes
- Module 1: What are Big Data Clusters?
- Module 2: Big Data Cluster Architecture
- Module 3: Deployment of Big Data Clusters
- Module 4: Loading and Querying Data in Big Data Clusters
- Module 5: Working with Spark in Big Data Clusters
- Module 6: Machine Learning on Big Data Clusters
- Module 7: Create and Consume Big Data Cluster Apps
- Module 8: Maintenance of Big Data Clusters
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Modules
01Module 1: What are Big Data Clusters?
1.1 Introduction
1.2 Linux, PolyBase, and Active Directory
1.3 Scenarios
02Module 2: Big Data Cluster Architecture
2.1 Introduction
2.2 Docker
2.3 Kubernetes
2.4 Hadoop and Spark
2.5 Components
2.6 Endpoints
03Module 3: Deployment of Big Data Clusters
3.1 Introduction
3.2 Install Prerequisites
3.3 Deploy Kubernetes
3.4 Deploy BDC
3.5 Monitor and Verify Deployment
04Module 4: Loading and Querying Data in Big Data Clusters
4.1 Introduction
4.2 HDFS with Curl
4.3 Loading Data with T-SQL
4.4 Virtualizing Data
4.5 Restoring a Database
05Module 5: Working with Spark in Big Data Clusters
5.1 Introduction
5.2 What is Spark
5.3 Submitting Spark Jobs
5.4 Running Spark Jobs via Notebooks
5.5 Transforming CSV
5.6 Spark-SQL
5.7 Spark to SQL ETL
06Module 6: Machine Learning on Big Data Clusters
6.1 Introduction
6.2 Machine Learning Services
6.3 Using MLeap
6.4 Using Python
6.5 Using R
07Module 7: Create and Consume Big Data Cluster Apps
7.1 Introduction
7.2 Deploying, Running, Consuming, and Monitoring an App
7.3 Python Example - Deploy with azdata and Monitoring
7.4 R Example - Deploy with VS Code and Consume with Postman
7.5 MLeap Example - Create a yaml file
7.6 SSIS Example - Implement scheduled execution of a DB backup
08Module 8: Maintenance of Big Data Clusters
8.1 Introduction
8.2 Monitoring
8.3 Managing and Automation
8.4 Course Wrap Up
Course certificate
Upon completion of your training course, you will receive a Certificate of completion displaying your full name, course completed as well as the date of completion. You can print this out or save it digitally to showcase your accomplishment.
Frequently asked questions
How much time do I need for Microsoft SQL Server 2019 – Big Data?
Around 7 hours across 8 modules. Stopping mid-module is fine; it remembers where you got to. You have 12 months on the account before it closes.
Do I need any experience or prior training?
None. Anyone can enrol and start the same day.
Is a certificate included?
Yes. You can download or print it as soon as you have finished, and log back in for another copy later.
Is Microsoft SQL Server 2019 – Big Data an accredited qualification?
No. It is professional training with a certificate of completion rather than a regulated qualification. That is the right thing for evidencing training, and the wrong thing if a job advert specifically demands an accredited award.
How soon do I get access?
As soon as you have paid. Your login details are emailed after checkout, and the course runs in a browser, so there is nothing to install.
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SQL Server Master Training Bundle
That works out at about £9.00 per course.
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