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Artificial Intelligence (AI) for Investments

Indian Institute of Technology Kanpur and NPTEL via Swayam

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Overview

"Artificial Intelligence (AI) for Investments" is a specialized course designed to equip finance professionals, investors, and analysts with the knowledge and skills to harness AI technologies for smarter investment decisions. The course explores how AI-driven tools and algorithms are transforming traditional investment strategies by enhancing data analysis, risk assessment, and portfolio management. You’ll learn about AI applications in quantitative trading, algorithmic investing, sentiment analysis, and predictive modeling. The course covers key techniques such as machine learning, natural language processing, and neural...

Syllabus

Week 1:Introduction to financial markets: Risk-Return Analysis in Investment Decisions Measures of Risk and Return, understanding value of a firm, goals of a firm, cash flow discounting, making investment decisions, valuation of fixed income securities and common stocks, introduction to portfolio theory and asset pricing models, cost of capital. Week 2:Overview of AI and machine learning models: Probability modelling, inferential statistics, Supervised and Unsupervised learning algorithms, regression and classification algorithms. Week 3:Introduction to R Programming, R Fundamentals, Exploratory data analysis and data visualization with R. Statistical Analysis with R, Inferential statistics and hypothesis testing with R.Week 4:Market Microstructure and Liquidity: Order-driven vs. Quote-driven markets, Market efficiency, Risk preferences, Limit order books, market microstructure types, economic theory of choice, interest rate compoundingWeek 5:Portfolio construction: Portfolio risk and expected returns for two securities and multiple securities, risk diversification with portfolios, correlation structure, mean-variance framework, portfolio construction with RWeek 6:Portfolio Optimization: Portfolio Possibility curve, Efficient frontier, Minimum Variance portfolios, Introduction to risk-free lending and borrowing, market risk and beta, portfolio optimization with RWeek 7:Asset Pricing Models: Capital Asset Pricing Model (CAPM), Capital Market Line, Security Market Line, Fallings of CAPM, Single-Index and Multi-Index models, Expected Risk and Return with Index models, 3-Factor Fama-French ModelWeek 8:Portfolio Management and Performance Evaluation: Portfolio Management strategies, Active vs Passive Portfolio Management, Value vs Growth investing, One-parameter performance measures Timing & Selection performance measures, application of asset pricing models in performance managementWeek 9:Introduction to Algorithmic Trading: Technical analysis and trend determination, Dow Theory, Moving averages, Momentum indicators, Classical price patterns. Week 10:AI and machine learning in Trading execution and portfolio management: Regression and Classification algorithm applications in security analysis, forecasting, and prediction, Case Study examplesWeek 11:Advanced time-series regression algorithms: Panel regression quantile regression, ARMA/ARIMA models, Mean reverting trading strategies with vector error correction models and cointegration, model risk management, back testing, model validation, and stress testing with RWeek 12:Advanced time-series algorithms for financial risk-management: Value-at-risk, Expected Shortfall, ARCH/GARCH models, implementation with

Artificial Intelligence (AI) for Investments
Go to Class

Indian Institute of Technology Kanpur and NPTEL via Swayam

Paid Certificate Available

English

On-Demand

Instructor

Abhinava Tripathi

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