Our Courses

Data Analytics in Accounting Capstone

Data Analytics in Accounting Capstone

This capstone is the last course in the Data Analytics in Accountancy Specialization. In this capstone course, you are going to take the knowledge and skills you have acquired from the previous courses and apply them to a real-world problem.

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  • 19 hours
  • English
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Modeling Data in the Tidyverse

Modeling Data in the Tidyverse

Developing insights about your organization, business, or research project depends on effective modeling and analysis of the data you collect. Building effective models requires understanding the different types of questions you can ask and how to map those questions to your data. Different modeling approaches can be chosen to detect interesting patterns in the data and identify hidden relationships. This course covers the types of questions you can ask of data and the various modeling approaches that you can apply.

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  • 21 hours
  • English
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Linear Regression with Python

Linear Regression with Python

In this 2-hour long project-based course, you will learn how to implement Linear Regression using Python and Numpy. Linear Regression is an important, fundamental concept if you want break into Machine Learning and Deep Learning.

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  • 2 hours
  • English
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Deploy a predictive machine learning model using IBM Cloud

Deploy a predictive machine learning model using IBM Cloud

In this 1-hour long project-based course, you will be able to create, evaluate and save a machine learning model (without writing a single line of code) using Watson Studio on IBM Cloud Platform, and you will make deployment of the model and try out as a web service frontend to make predictions.

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  • 2 hours
  • English
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Build Decision Trees, SVMs, and Artificial Neural Networks

Build Decision Trees, SVMs, and Artificial Neural Networks

There are numerous types of machine learning algorithms, each of which has certain characteristics that might make it more or less suitable for solving a particular problem. Decision trees and support-vector machines (SVMs) are two examples of algorithms that can both solve regression and classification problems, but which have different applications. Likewise, a more advanced approach to machine learning, called deep learning, uses artificial neural networks (ANNs) to solve these types of problems and more.

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  • 22 hours
  • English
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Hands-on with AWS for IT Professionals

Hands-on with AWS for IT Professionals

This course gets hands-on by teaching how to create a new AWS Account, create an Administrative User, and explore the AWS Free Tier. Students can then follow demonstration and explainer videos containing on how AWS Services can combine to create solutions that can be useful in real-life scenarios. The scenarios are grouped into three major categories: Data, Operations, and Architecture. In the data scenario, the instructors will show how a Machine Learning solution automatically redacts PII (Personal Identifiable Information) when data gets retrieved from an Amazon S3 bucket.

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  • 2 hours
  • English
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Machine Learning Capstone

Machine Learning Capstone

This Machine Learning Capstone course uses various Python-based machine learning libraries, such as Pandas, sci-kit-learn, and Tensorflow/Keras. You will also learn to apply your machine-learning skills and demonstrate your proficiency in them. Before taking this course, you must complete all the previous courses in the IBM Machine Learning Professional Certificate.   In this course, you will also learn to build a course recommender system, analyze course-related datasets, calculate cosine similarity, and create a similarity matrix.

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  • 19 hours
  • English
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Supervised Text Classification for Marketing Analytics

Supervised Text Classification for Marketing Analytics

Marketing data often requires categorization or labeling. In today’s age, marketing data can also be very big, or larger than what humans can reasonably tackle. In this course, students learn how to use supervised deep learning to train algorithms to tackle text classification tasks. Students walk through a conceptual overview of supervised machine learning and dive into real-world datasets through instructor-led tutorials in Python.

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  • 12 hours
  • English
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Introduction to Digital health

Introduction to Digital health

This course introduces the field of digital health and the key concepts and definitions in this emerging field. The key topics include Learning Health Systems and Electronic Health Records and various types of digital health technologies to include mobile applications, wearable technologies, health information systems, telehealth, telemedicine, machine learning, artificial intelligence and big data.

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  • 31 hours
  • English
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Encoder-Decoder Architecture

Encoder-Decoder Architecture

This course gives you a synopsis of the encoder-decoder architecture, which is a powerful and prevalent machine learning architecture for sequence-to-sequence tasks such as machine translation, text summarization, and question answering. You learn about the main components of the encoder-decoder architecture and how to train and serve these models. In the corresponding lab walkthrough, you’ll code in TensorFlow a simple implementation of the encoder-decoder architecture for poetry generation from the beginning.

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  • 1 hour
  • English
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MongoDB Aggregation Framework

MongoDB Aggregation Framework

This course will teach you how to perform data analysis using MongoDB's powerful Aggregation Framework. You'll begin this course by building a foundation of essential aggregation knowledge. By understanding these features of the Aggregation Framework you will learn how to ask complex questions of your data.

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  • 19 hours
  • English
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K-Means Clustering 101: World Happiness Report

K-Means Clustering 101: World Happiness Report

In this case study, we will train an unsupervised machine learning algorithm to cluster countries based on features such as economic production, social support, life expectancy, freedom, absence of corruption, and generosity. The World Happiness Report determines the state of global happiness. The happiness scores and rankings data has been collected by asking individuals to rank their life from 0 (worst possible life) to 10 (best possible life).

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  • 3 hours
  • English
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Advanced Data Science Capstone

Advanced Data Science Capstone

This project completer has proven a deep understanding on massive parallel data processing, data exploration and visualization, advanced machine learning and deep learning and how to apply his knowledge in a real-world practical use case where he justifies architectural decisions, proves understanding the characteristics of different algorithms, frameworks and technologies and how they impact model performance and scalability. 

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  • 9 hours
  • English
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توقع حضور المواعيد الطبية باستخدام Python

توقع حضور المواعيد الطبية باستخدام Python

في نهاية المشروع ده هتقدر تصمم model ذكاء صناعي عشان يتوقع المريض هيجي المعاد إلي كان محدد ولا لاباستخدام Python و Jupyter Notebook. خلال المشروع هنمشى مع بعض خطوة بخطوة عشان نقدر نحلل البيانات إلي هتكون معنا من website Kaggle.com الdata دي هتكون عن مرضى في البرازيل.و هنقدر نحدد ازاي الmachine learning engineer بيختار الmachine learning model بتاعو. و ازاي إقدر إستعمل ال-machine learning model بتاعي ده عشان اتوقع هل المريض ده هيجي ولا لا. المشروع ده هيفيد الناس المهتمة بمجال الdata science.

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  • 2 hours
  • Arabic
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Application using Amazon Rekognition

Application using Amazon Rekognition

في اخر الكورس هتقدر تستخدم AWS Rekognition من الWesbite بتاع AWS . خلال المشروع هتقدر تستخدم AWS Rekognition APIs في Python code وهتقدر تعمل مشاريع Computer Vision, من غير ما تدخل في تفاصيل بناء Machine Learning Model,هتقدر كمان تستخدم AWS High Level Services وتخليها تعمل الوظيفة المطلوبة بسرعة ودقة \nالمشروع  ده لاي شخص مبتدأ حابب يعمل مشروع او حلول بال Computer Vision باستخدام AWS  سواء في دراسته او شغله لتسهيل عملية بناء Machine Learning Model.

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  • 3 hours
  • Arabic
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مطوّر الواجهة الخلفية من Meta

مطوّر الواجهة الخلفية من Meta

Ready to gain new skills and the tools developers use to create websites and web applications?

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  • Arabic
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機器學習基石上 (Machine Learning Foundations)---Mathematical Foundations

機器學習基石上 (Machine Learning Foundations)---Mathematical Foundations

Machine learning is the study that allows computers to adaptively improve their performance with experience accumulated from the data observed. Our two sister courses teach the most fundamental algorithmic, theoretical and practical tools that any user of machine learning needs to know. This first course of the two would focus more on mathematical tools, and the other course would focus more on algorithmic tools. [機器學習旨在讓電腦能由資料中累積的經驗來自我進步。我們的兩項姊妹課程將介紹各領域中的機器學習使用者都應該知道的基礎演算法、理論及實務工具。本課程將較為著重數學類的工具,而另一課程將較為著重方法類的工具。]

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  • Chinese
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Machine Learning con Azure Machine Learning Studio

Machine Learning con Azure Machine Learning Studio

Este proyecto es un proyecto práctico para aprender a crear modelos de ML con Azure Machine Learning Studio.

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  • 3 hours
  • Spanish
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Serverless Data Analysis with Google BigQuery and Cloud Dataflow em Português Brasileiro

Serverless Data Analysis with Google BigQuery and Cloud Dataflow em Português Brasileiro

Este curso rápido sob demanda tem uma semana de duração e é baseado no Google Cloud Platform Big Data and Machine Learning Fundamentals.

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  • Portuguese
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Google Cloud Platform Big Data and Machine Learning Fundamentals em Português Brasileiro

Google Cloud Platform Big Data and Machine Learning Fundamentals em Português Brasileiro

Neste curso, apresentamos os produtos e serviços de Big Data e machine learning do Google Cloud que dão suporte ao ciclo de vida de dados para IA. Nele, você verá os processos, desafios e benefícios de criar um pipeline de Big Data e modelos de machine learning com a Vertex AI no Google Cloud.

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  • Portuguese
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How Google does Machine Learning em Português Brasileiro

How Google does Machine Learning em Português Brasileiro

"Quais são as práticas recomendadas para implementar machine learning no Google Cloud? O que é Vertex AI e como é possível usar a plataforma para criar, treinar e implantar modelos de machine learning do AutoML com rapidez e sem escrever nenhuma linha de código? O que é machine learning e que tipos de problema ele pode resolver? O Google pensa em machine learning de uma forma um pouco diferente.

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  • Portuguese
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AI、機械学習、ディープラーニングのための TensorFlow 入門

AI、機械学習、ディープラーニングのための TensorFlow 入門

ソフトウェア開発者であれば、拡張性のあるAI搭載アルゴリズムを構築したい場合、構築ツールの使い方を理解する必要があります。この講座は今後学んでいく「TensorFlow in Practice 専門講座」の一部であり、機械学習用の人気のオープンソースフレームワークであるTensorFlowのベストプラクティスを学習します。 アンドリュー・エンの「 The Machine Learning(機械学習)」と「Deep Learning Specialization(ディープラーニング専門講座)」では、機械学習とディープラーニングの最も重要かつ基本的な原理を学習します。deeplearning.aiが提供する新しい「TensorFlow in Practice 専門講座」では、TensorFlowを使用してそれらの原理を実装し、拡張性のあるモデルを構築して現実世界の問題に適用する方法を学びます。ニューラルネットワークの仕組みについての理解を深めるには、「ディープラーニング専門講座」を受講することをお勧めします。

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  • Japanese
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Big Data: capstone project

Big Data: capstone project

En este último curso de la Especialización Big Data el estudiante tendrá la oportunidad de aplicar algunas de las herramientas y métodos aprendidos en los cursos anteriores en un caso práctico. El objetivo de este Capstone Project es mostrar un ejemplo del trabajo que se realiza diariamente en el departamento de Cosmología del Port d’Informació Científica, en Barcelona. Se trata de crear un clasificador para imágenes de galaxias, a partir de datos del proyecto GalaxyZoo e imágenes y datos del telescopio Sloan Digital Sky Survey.

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  • 13 hours
  • Spanish
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Achieving Advanced Insights with BigQuery 日本語版

Achieving Advanced Insights with BigQuery 日本語版

このコースシリーズの 3 番目のコースは、「Achieving Advanced Insights with BigQuery」です。ここでは、高度な関数と、複雑なクエリを管理可能なステップに分割する方法を学びながら、SQL に関する知識を深めます。 BigQuery の内部アーキテクチャ(列ベースのシャーディング ストレージ)についてや、ARRAY と STRUCT を使用した、ネストされたフィールドと繰り返しフィールドなどの高度な SQL トピックについて説明します。最後に、クエリのパフォーマンスを最適化する方法と、承認済みビューを使用してデータを保護する方法について説明します。 このコースを修了したら、「Applying Machine Learning to Your Data with Google」コースに登録してください。

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Smart Analytics, Machine Learning, and AI on GCP em Português Brasileiro

Smart Analytics, Machine Learning, and AI on GCP em Português Brasileiro

A incorporação de machine learning em pipelines de dados aumenta a capacidade de extrair insights dessas informações. Neste curso, mostramos as várias formas de incluir essa tecnologia em pipelines de dados do Google Cloud. Para casos de pouca ou nenhuma personalização, vamos falar sobre o AutoML. Para usar recursos de machine learning mais personalizados, vamos apresentar os Notebooks e o machine learning do BigQuery (BigQuery ML). No curso, você também vai aprender sobre a produção de soluções de machine learning usando a Vertex AI.

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