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Average Ratings 0 Ratings
Description
IBM Safer Payments empowers organizations to design tailored, intuitive decision models that allow for quicker adaptation to new threats and enhanced fraud detection with improved accuracy and speed, all while eliminating the need for external vendors or data scientists. This solution greatly speeds up the optimization of modeling by offering the necessary analytics and simulation tools for ongoing business performance monitoring and adjustments to evolving fraud patterns. Clients experience impressive detection rates coupled with minimal false positives after integrating our system into their operations. Users can construct, evaluate, validate, and implement machine-learning models in just days instead of months, freeing them from vendor dependencies. The platform can process thousands of transactions every second, ensuring an enterprise-level solution that boasts 99.999% uptime and exceptional throughput. Its open architecture allows for the importation of detection models, model elements, and intellectual property, all while providing a comprehensive interface for developing new models. Additionally, it supports a wide range of data science, machine learning, or artificial intelligence methodologies, making it a versatile tool for any organization looking to enhance their payment security. Ultimately, this flexibility ensures that businesses can stay ahead of potential fraud threats more effectively than ever before.
Description
Scalarr offers a cutting-edge solution for mobile ad fraud detection through advanced Machine Learning technology. To combat the most significant threats in mobile advertising, Scalarr employs a dual-layered approach with next-generation algorithms that achieve an impressive accuracy rate of up to 97% in identifying various forms of in-app fraud. Users can experience the benefits of Scalarr by exploring its capabilities to overview, analyze, and thwart mobile app install ad fraud using its unsupervised machine learning features before any harm occurs. The platform utilizes both unsupervised and semi-supervised machine learning techniques to automatically spot and understand fraud patterns across vast datasets. By examining countless clicks, installs, and post-install event variables, Scalarr significantly minimizes both false positives and false negatives in its detection process. With a sophisticated model design prioritizing result accuracy and thoroughness, Scalarr stands out as a robust tool that provides actionable insights at the individual conversion level, ensuring advertisers can make informed decisions regarding their ad campaigns. This comprehensive approach ultimately enhances the overall integrity of mobile advertising strategies.
API Access
Has API
API Access
Has API
Integrations
Adjust
AppsFlyer
Branch
Kochava
Singular
Tenjin
mParticle
Pricing Details
No price information available.
Free Trial
Free Version
Pricing Details
No price information available.
Free Trial
Free Version
Deployment
Web-Based
On-Premises
iPhone App
iPad App
Android App
Windows
Mac
Linux
Chromebook
Deployment
Web-Based
On-Premises
iPhone App
iPad App
Android App
Windows
Mac
Linux
Chromebook
Customer Support
Business Hours
Live Rep (24/7)
Online Support
Customer Support
Business Hours
Live Rep (24/7)
Online Support
Types of Training
Training Docs
Webinars
Live Training (Online)
In Person
Types of Training
Training Docs
Webinars
Live Training (Online)
In Person
Vendor Details
Company Name
IBM
Founded
1911
Country
United States
Website
www.ibm.com/products/safer-payments
Vendor Details
Company Name
Scalarr
Founded
2016
Country
United States
Website
scalarr.io
Product Features
Fraud Detection
Access Security Management
Check Fraud Monitoring
Custom Fraud Parameters
For Banking
For Crypto
For Insurance Industry
For eCommerce
Internal Fraud Monitoring
Investigator Notes
Pattern Recognition
Transaction Approval
Product Features
Click Fraud
Account Alerts
Activity Monitoring
IP Address Monitoring
IP Blocking
Keyword Tracking
Refund Management
Risk Assessment
Time on Site Tracking