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    • Apache Spark

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    79 résultats pour ''apache spark'

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      IBM Skills Network

      IBM Data Engineering

      Compétences que vous acquerrez : Data Management, Databases, SQL, Data Architecture, Big Data, Data Structures, Database Administration, Statistical Programming, Database Theory, Apache, Extract, Transform, Load, Python Programming, Data Warehousing, Database Application, Data Model, Data Analysis, NoSQL, Data Engineering, Distributed Computing Architecture, Computer Architecture, Database Design, Operating Systems, System Programming, System Software, Programming Principles, PostgreSQL, Algebra, Business Analysis, Machine Learning, Computer Programming, Applied Machine Learning, Correlation And Dependence, Feature Engineering, General Statistics, Graph Theory, Machine Learning Algorithms, Machine Learning Software, Regression, Statistical Analysis, Statistical Machine Learning, Data Visualization, Data Visualization Software, Cloud Computing, DevOps, Leadership and Management, Cloud Engineering, Interactive Data Visualization, Basic Descriptive Statistics, Exploratory Data Analysis, Cloud Applications, Data Science, Hardware Design, Kubernetes, Network Architecture, Network Security, Other Programming Languages, Professional Development, Security Engineering, Accounting, Algorithms, Computational Logic, Computational Thinking, Computer Networking, Computer Programming Tools, IBM Cloud, Linux, Mathematical Theory & Analysis, Mathematics, Microarchitecture, Project Management, Security Strategy, Software Architecture, Software Engineering, Strategy and Operations, Theoretical Computer Science

      4.6

      (40.3k avis)

      Beginner · Professional Certificate · 3-6 Months

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      Databricks

      Data Science with Databricks for Data Analysts

      Compétences que vous acquerrez : Data Management, Apache, Algorithms, Computer Programming, Machine Learning, Probability & Statistics, Theoretical Computer Science, Data Analysis, Mathematics, Big Data, Databases, SQL, Data Science, Statistical Programming, Exploratory Data Analysis, Feature Engineering, Machine Learning Algorithms, Applied Machine Learning, General Statistics, Basic Descriptive Statistics, Extract, Transform, Load, Data Structures, Dimensionality Reduction, Business Analysis, Statistical Analysis

      4.5

      (453 avis)

      Intermediate · Specialization · 3-6 Months

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      IBM Skills Network

      Introduction to Big Data with Spark and Hadoop

      Compétences que vous acquerrez : Apache, Big Data, Data Architecture, Distributed Computing Architecture, Computer Architecture, Data Management, Cloud Applications, Cloud Computing, Data Analysis, Data Warehousing, Database Administration, Databases, DevOps, Extract, Transform, Load, Kubernetes, Network Architecture, Other Programming Languages, SQL

      4.3

      (173 avis)

      Beginner · Course · 1-3 Months

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      University of California San Diego

      Big Data

      Compétences que vous acquerrez : Data Management, Big Data, Data Analysis, Exploratory Data Analysis, Probability & Statistics, Distributed Computing Architecture, Machine Learning, Business Analysis, Statistical Programming, Data Science, Graph Theory, Mathematics, Apache, Computer Architecture, Databases, Data Analysis Software, NoSQL, Data Architecture, Machine Learning Algorithms, Business, Data Model, Data Structures, Spreadsheet Software, Data Mining, Python Programming, Data Visualization, SQL, Statistical Machine Learning, Statistical Visualization, Database Application, Information Technology, Cloud Computing, Software As A Service, Applied Machine Learning, Basic Descriptive Statistics, Computer Programming, Correlation And Dependence, Database Administration, Dimensionality Reduction, Feature Engineering, General Statistics, PostgreSQL, Regression, Statistical Analysis, Algorithms, Data Warehousing, Theoretical Computer Science

      4.5

      (13.5k avis)

      Beginner · Specialization · 3-6 Months

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      University of California, Davis

      Learn SQL Basics for Data Science

      Compétences que vous acquerrez : SQL, Data Management, Statistical Programming, Apache, Big Data, Databases, Data Analysis, Data Analysis Software, Extract, Transform, Load, Data Warehousing, Machine Learning, Basic Descriptive Statistics, Computer Programming, Data Science, Exploratory Data Analysis, General Statistics, Leadership and Management, Probability & Statistics, Python Programming, Statistical Analysis

      4.6

      (15.2k avis)

      Beginner · Specialization · 3-6 Months

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      École Polytechnique Fédérale de Lausanne

      Big Data Analysis with Scala and Spark (Scala 2 version)

      Compétences que vous acquerrez : Big Data, SQL, Scala Programming

      Intermediate · Course · 1-4 Weeks

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      École Polytechnique Fédérale de Lausanne

      Big Data Analysis with Scala and Spark

      Compétences que vous acquerrez : Apache, Big Data, Computer Programming, Data Management, Other Programming Languages, Data Analysis, Data Analysis Software, SQL, Scala Programming

      4.6

      (2.6k avis)

      Intermediate · Course · 1-4 Weeks

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      Databricks

      Apache Spark (TM) SQL for Data Analysts

      Compétences que vous acquerrez : Apache, Data Management, Data Analysis, Exploratory Data Analysis, Big Data, Basic Descriptive Statistics, Databases, Extract, Transform, Load, SQL, Business Analysis, Probability & Statistics, Statistical Analysis, Statistical Programming

      4.6

      (406 avis)

      Intermediate · Course · 1-3 Months

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      University of California, Davis

      Distributed Computing with Spark SQL

      Compétences que vous acquerrez : Data Management, Apache, Big Data, Databases, SQL, Statistical Programming, Data Warehousing, Machine Learning, Data Science

      4.5

      (564 avis)

      Intermediate · Course · 1-4 Weeks

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      IBM Skills Network

      NoSQL, Big Data, and Spark Foundations

      Compétences que vous acquerrez : Big Data, Data Architecture, Apache, Data Management, Databases, NoSQL, Distributed Computing Architecture, Database Theory, Database Administration, Data Structures, Database Application, Data Model, Computer Architecture, Data Analysis, Extract, Transform, Load, Applied Machine Learning, Correlation And Dependence, Feature Engineering, General Statistics, Graph Theory, Machine Learning, Machine Learning Algorithms, Machine Learning Software, Regression, Statistical Analysis, Statistical Machine Learning, Statistical Programming, Database Design, Data Warehousing, SQL, Cloud Applications, Cloud Computing, DevOps, Kubernetes, Network Architecture, Other Programming Languages, Algorithms, Computational Thinking, Computer Networking, Computer Programming, IBM Cloud, Mathematics, Theoretical Computer Science

      4.3

      (305 avis)

      Beginner · Specialization · 3-6 Months

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      Cloudera

      Analyzing Big Data with SQL

      Compétences que vous acquerrez : Data Management, Databases, SQL, Statistical Programming, Big Data, Apache, Cloud Computing, Cloud Platforms, Computer Architecture, Distributed Computing Architecture, Human Computer Interaction, Software Engineering, Theoretical Computer Science, User Experience, Computer Programming, Data Analysis, Programming Principles

      4.9

      (506 avis)

      Beginner · Course · 1-3 Months

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      Coursera Project Network

      Data Analysis Using Pyspark

      Compétences que vous acquerrez : Apache, Big Data, Computer Programming, Data Analysis, Data Management, Python Programming, Statistical Programming

      4.4

      (244 avis)

      Intermediate · Guided Project · Less Than 2 Hours

    Recherches liées à apache spark

    apache spark (tm) sql for data analysts
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    1234…7

    En résumé, voici 10 de nos cours apache spark les plus populaires

    • IBM Data Engineering: IBM Skills Network
    • Data Science with Databricks for Data Analysts: Databricks
    • Introduction to Big Data with Spark and Hadoop: IBM Skills Network
    • Big Data: University of California San Diego
    • Learn SQL Basics for Data Science: University of California, Davis
    • Big Data Analysis with Scala and Spark (Scala 2 version): École Polytechnique Fédérale de Lausanne
    • Big Data Analysis with Scala and Spark: École Polytechnique Fédérale de Lausanne
    • Apache Spark (TM) SQL for Data Analysts: Databricks
    • Distributed Computing with Spark SQL: University of California, Davis
    • NoSQL, Big Data, and Spark Foundations: IBM Skills Network

    Compétences que vous avez acquises en Machine Learning

    Programmation En Python (33)
    TensorFlow (32)
    Deep Learning (30)
    Réseau De Neurones Artificiels (24)
    Big Data (18)
    Classification Statistique (17)
    Apprentissage Par Renforcement (13)
    Algèbre (10)
    Bayésien (10)
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    Régression Linéaire (9)
    NumPy (9)

    Questions fréquentes sur Apache Spark

    • Apache Spark is an open source analytics framework for large-scale data processing with capabilities for streaming, SQL, machine learning, and graph processing. Apache Spark is important to learn because its ease of use and extreme processing speeds enable efficient and scalable real-time data analysis.

      Apache Spark can process in-memory on dedicated clusters to achieve speeds 10-100 times faster than the disc-based batch processing Apache Hadoop with MapReduce can provide, making it a top choice for anyone processing big data. Spark is also easy to use, with the ability to write applications in its native Scala, or in Python, Java, R, or SQL. This versatility and accessibility helps startups harness the powerful data science they need for cutting edge innovation.

      Spark also provides the scalable machine learning needed by artificial intelligence (AI) engineers to create applications that can transform the way we interact with digital technology, from recommendation algorithms on services like Netflix and Spotify to automated medical screening.‎

    • Many careers in data science benefit from skills in Apache Spark, as software development engineers, data scientists, data analysts, and machine learning engineers use Spark on a daily basis. These roles are in high demand and are thus highly compensated; according to Glassdoor, machine learning engineers earn an average salary of $114,121 per year.

      Machine learning engineers design and build self-learning software and monitor its iterations to fine tune how models perform when they are scaled up and put into service. These professionals need a background in both software engineering and data science, and are increasingly being hired in a wide variety of fields such as education, healthcare, and finance. As machine learning continues to expand into many more fields, the need for machine learning engineers will continue to grow.‎

    • Yes! Coursera offers a wide range of popular online courses and Specializations on data science in general and Apache Spark specifically, including courses in related topics like scalable machine learning, distributed computing, and big data analysis. You’ll learn from top-ranked institutions and organizations like the University of California Davis, the University of California San Diego, École Polytechnique Fédérale de Lausanne, and IBM, so you don’t have to sacrifice the quality of your education for the flexibility of learning remotely.

      Coursera also offers the courses needed to work towards the IBM AI Engineering Professional Certificate. And, if you want to take your data science education to the next level, Coursera provides you with the opportunity to pursue a Master of Science in Data Science through the University of Colorado.‎

    • Because Spark works in application programming interfaces like Scala, Java, and Python, it helps to have a good grasp of one or more of these programming languages. Other prerequisites may vary depending on the level of the course you're taking. While beginner-level courses allow you to become familiar with Apache Spark and develop skills as you go, intermediate or advanced courses may require additional skills or experience within data science or computer programming. As you progress with learning Apache Spark, you'll develop the skills needed to read and write data to a variety of sources, parse different types of data, work within the artificial intelligence and machine learning arena, and transform data to leverage insights from it.‎

    • People with a passion for data science and a desire to gain increased access to big data are well suited to learning Apache Spark. This tool opens a variety of opportunities for users to explore big data and leverage it to solve key problems within organizations. Additionally, Spark offers a faster pace for machine learning workloads, with large scale data processing capability that's exponentially faster than other tools like Hadoop. Because Apache Spark is on the front lines of innovation within AI and big data, those with an innate sense of curiosity and a desire to innovate are among those best suited to learning Spark and working in relevant roles.‎

    • If you want to work within big data, learning Apache Spark could be a good move for you. This unified analytics engine is particularly popular because of its speed, the libraries that come with it, robust APIs, and its support for multiple programming languages. Additionally, it could be a smart career move depending on your aspirations. Demand continues to surge for professionals who can leverage Spark's power. In February 2021, Indeed.com listed more than 1,800 open positions looking for full-time Apache Spark professionals across multiple industries. Additionally, according to Databricks, learning Apache Sparks could give you a boost in your earning potential.‎

    Le contenu de cette FAQ a été mis à disposition à des fins d'information uniquement. Il est conseillé aux étudiants d'effectuer des recherches supplémentaires afin de s'assurer que les cours et autres qualifications suivis correspondent à leurs objectifs personnels, professionnels et financiers.
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