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ML Finance – Machine Learning In Finance

Original price was: $250.00.Current price is: $162.00.

Delivery: Within 7 days

SKU: LWG5EHRT Category: Tags: ,

Description

ML Finance – Machine Learning In Finance

Master the most in-demand skill-set of the world’s top financial institutions with one of the most practical, comprehensive and affordable courses in Financial Machine Learning.

15+ Real-World Practical Applications

Case studies along with their python-based implementation.

Financial Applications Coverage

  • Algo Trading
  • Portfolio Management
  • Fraud detection
  • Leanding and Loand Default prediction
  • Sentiment Analysis
  • Derivatives Pricing and Hedging
  • Asset Price Prediction
  • and many more

Who Should Take The Course

  • Buy/sell side quants
  • Asset/Wealth Managers
  • CXOs
  • Data Scientists
  • Machine Learning Engineers
  • Students targeting finance sector
  • Business Analysts
  • AI/ML enthusiasts

What You’ll Learn In Machine Learning In Finance

  • Apply machine and deep learning models to solve real-world problems in finance.
  • Understand the theory and intuition behind several machine learning algorithms for regression, classification and clustering
  • Understand the underlying theory, intuition and mathematics behind Artificial Neural Networks (ANNs) and Deep Neural network.
  • Different machine learning based cutting-edge approaches to portfolio optimization.
  • Master Python 3 programming fundamentals for Data Science and Machine Learning with focus on Finance.
  • Leverage the power of Python to apply key financial concepts such as calculating daily portfolio returns, risk and Sharpe ratio.
  • Use key Python Libraries such as NumPy for scientific computing, Pandas for Data Analysis, Matplotlib for data plotting/visualization, and Keras, tensorflow for deep learning.
  • Assess the performance of trained machine learning regression models using various KPIs.
  • Train ANNs using back propagation and gradient descent algorithms.
  • Master feature engineering and data cleaning strategies for machine learning and data science applications.

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