
High-Performance Data Engineering. 100% Sovereign.
TIMi delivers the full power of a enterprise data cloud—on-premises, fully sovereign, and blisteringly fast.
No vendor lock-in. No hidden costs. Just pure engineering excellence that gives your team total freedom to experiment, innovate, and solve your toughest AI and automation challenges in record time.
The TIMi Advantages:
No-Code Integration: Automate complex workflows and connect your entire tech stack instantly—from SAP and Salesforce to SharePoint and Google BigTable.
Radical Efficiency: Competitors such as Databricks, Dataiku, and MS Fabric relies heavily on a Spark back-end. Spark quickly burns budget because of bloated Java virtual machines. TIMi strips away the waste with pure, bare-metal, hand-optimized assembly code. The result: A single €2k TIMi server outperforms a 267-node Spark cluster, processing billions of rows in seconds and effortlessly running petabyte-scale data lakes at a fraction of the cost.
Pioneering AI: Harness advanced machine learning built on the legacy of the first Auto-ML engine (pioneered in 2007).
Available on-premises or via our EU-Hosted Sovereign Cloud. Trusted across Telecoms, Banking, Manufacturing, Retail, Defense, and Government.
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Knak is the leading no-code platform for building high-impact emails and landing pages at scale. Did we mention no-code?
Designed for self-sufficient marketing teams, Knak removes creative and technical bottlenecks with easy-to-use templates, brand controls, and deep integrations with enterprise MAPs like Marketo, Salesforce, and Eloqua. Cut production time, reduce costs, and drive campaign results faster — without compromising quality or compliance. Join global brands that rely on Knak to turn marketing strategy into execution, effortlessly.
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alvaModel
AlvaModel is a sophisticated software tool tailored for constructing, validating, comparing, and applying QSAR and QSPR models. It effectively supports a range of tasks, including regression and classification, by utilizing molecular descriptors and fingerprints while prioritizing transparency, interpretability, and scientific integrity in its modeling approach.
This application incorporates various data splitting methods, variable selection techniques, and modeling algorithms, alongside extensive internal and external validation processes. Furthermore, AlvaModel provides diagnostic visualizations, assessments of the applicability domain, and comparison tools, assisting users in identifying robust and predictive modeling options.
Designed to meet the highest standards of chemometrics, AlvaModel encourages the development of interpretable models that comply with OECD guidelines for QSAR validation, making it well-suited for both research endeavors and regulatory applications. Its intuitive graphical interface guides users through every step of the modeling process, offering fine-tuned control over each element of their modeling activities and ensuring an efficient workflow. In summary, AlvaModel is an indispensable resource for chemists and researchers who seek to enhance their modeling expertise while adhering to best practices in the field.
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DC-E DigitalClone for Engineering
DigitalClone® for Engineering stands out as the sole software that seamlessly combines various scales of analysis within a unified platform. Recognized globally as the premier tool for predicting gearbox reliability, DC-E excels not only in its modeling and analysis capabilities specific to gearboxes and gear/bearing interactions but also uniquely incorporates fatigue life modeling through advanced, physics-based methodologies (US Patent 10474772B2).
By enabling the creation of a digital twin for gearboxes, DC-E encompasses every phase of an asset's lifecycle—from the optimization of design and manufacturing processes to the selection of suppliers, followed by thorough root cause analysis of failures and condition-based maintenance along with prognostics. This innovative computational environment significantly decreases both the time and costs associated with launching new designs and ensuring their long-term maintenance, ultimately enhancing operational efficiency. Moreover, it empowers engineers to make informed decisions at every stage, leading to improved performance and reliability.
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