
Fiddler AI : Explainable monitoring and insights for AI models
Fiddler AI: in summary
Fiddler is a commercial platform focused on AI model monitoring, explainability, and performance analysis in production environments. It’s built for data scientists, ML engineers, MLOps teams, and business stakeholders who need visibility into model behavior, fairness, drift, and performance degradation across the full lifecycle of an AI system.
What sets Fiddler apart is its strong emphasis on explainability, enabling users to understand not just what went wrong with a model, but why. The platform supports real-time and batch model monitoring, integrates easily into existing ML pipelines, and provides actionable diagnostics to ensure that AI systems are trustworthy and compliant.
Key benefits:
Combines monitoring, drift detection, and explainability in one solution
Offers model-agnostic insights with detailed root cause analysis
Helps organizations meet governance, fairness, and regulatory requirements
What are the main features of Fiddler?
Real-time model monitoring and performance tracking
Fiddler continuously monitors models in production to detect issues as they emerge:
Tracks prediction distributions, confidence scores, latency, and output stability
Monitors both classification and regression models
Supports granular analysis by feature, segment, or time period
Integrates with CI/CD systems and real-time data streams
Drift detection across data and predictions
Detects shifts in input data and output distributions over time:
Monitors data drift (input feature changes) and prediction drift
Uses statistical tests to measure distributional changes
Highlights affected features and quantifies drift magnitude
Supports alerting and automated drift reporting
Explainability and root cause analysis
Fiddler’s core strength is its AI explainability engine:
Provides feature importance, SHAP values, and global vs. local explanations
Helps trace why predictions changed and what influenced them
Enables counterfactual analysis to understand “what if” scenarios
Useful for debugging, model validation, and user-facing transparency
Bias and fairness detection
Ensures AI models behave ethically across different user groups:
Evaluates fairness metrics like disparate impact, equal opportunity, demographic parity
Tracks performance across sensitive attributes (e.g., race, gender, age)
Visualizes where models may underperform or treat groups unfairly
Supports compliance with responsible AI standards
Collaboration and governance features
Fiddler is built for use across technical and business teams:
Provides audit trails, version control, and role-based access
Allows stakeholders to review, compare, and approve models
Centralizes monitoring, explanations, and decisions in a single platform
Helps enforce AI governance frameworks and reporting requirements
Why choose Fiddler?
Integrated monitoring and explainability: Understand not just what failed, but why
Model-agnostic and deployment-flexible: Works across frameworks and infrastructures
Supports ethical and responsible AI: Tools for fairness, compliance, and transparency
Designed for collaboration: Enables cross-functional decision-making
Production-grade reliability: Scalable and secure for real-world AI operations
Fiddler AI: its rates
Standard
Rate
On demand
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