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Reinforcement Learning Agents

🔥 Tier 2
Category
Tech
Salary Impact
Complexity
Difficult
Used in
All careers

Reinforcement learning is a machine learning paradigm where agents learn to take actions in an environment to maximize cumulative rewards. The agent doesn't receive labeled training data; instead, it interacts with an environment, receives reward signals, and adjusts its policy (decision-making strategy) to improve over time. Classic RL applications: game-playing (AlphaGo, Atari), robotics (motion control), optimization (resource allocation), and autonomous systems.