Observatory

We ensure a path of Applied Research, following the evolution of new algorithms, applying them in pilot projects, verifying their usability before adopting them in our solutions.

Solutions and Applied Research

We provide Machine Learning Solutions able to solve problems of Classification, Prediction, Forecast, Clustering, Behavior, Natural Language Processing (NLP), in different industrial contexts such as IOT, Banking, Automotive, Energy.

Machine Learning Maturity Model

We apply a rigorous and scalable approach in projects with a view to continuous improvement, verifying the maturity of the entire end-to-end ML process over time in terms of cost, process and results monitoring.

Data Science

Team of Data Scientists able to create Models and Monitor the Service. Data Architect and MLOps Engineers to define the Architectures and Govern the ML processes in MLOPS.

Auto-Forecast

An Effective Tool for Making Predictions

Convolutional Neural Networks

The effectiveness of Neural Networks in Object Detection field

Auto-Clustering

The Effectiveness of the Two-Level Clustering Technique

NLP & Text Mining

Natural Language Processing (NLP) & Text Mining

Methodology

Humanativa is able to help Organizations become AI-Driven.

To this purpose, we provide our methodological approach to support the customer in all phases of the end-to-end Machine Learning Cycle.

Amazon Web Services

Google Cloud Platform

Services

Training

AutoML Training to the Business Customer to make it autonomous in the experimentation of Models via AutoML offered by Cloud Computing Services (Amazon AWS, Microsoft Azure, Google GCP)

Consulting in Data Science

Development of Machine Learning Models.
Consulting for the improvement of Business Processes.
Planning and Cost Management of ML Services in Cloud.

Advanced Analytics

Implementation of specific ML solutions.
Data Visualization, Advanced Analytics.
Model Embedded, Integrating Models into Third-Party Applications.
Cloud Services, Microservices & Rest Services.

MLOPS

Lifecycle management of Machine Learning solutions both in Cloud Computing and On Premise.
Monitoring the Performance of Models in Operation.

Use case

Articles

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