Intelligent Automation
Combine Robotic Process Automation (RPA), artificial intelligence, and machine learning into intelligent process automation. Our Intelligent Automation solutions automate complex, knowledge-based workflows with unstructured data and create self-learning, adaptive systems for your enterprise.
- ✓Automation of complex processes with unstructured data and cognitive decisions
- ✓Self-learning systems with continuous AI-powered optimization
- ✓40–75% process cost reduction and up to 95% fewer errors through hyperautomation
- ✓End-to-end process automation across system and departmental boundaries
Your strategic success starts here
Our clients trust our expertise in digital transformation, compliance, and risk management
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For optimal preparation of your strategy session:
- Your strategic goals and objectives
- Desired business outcomes and ROI
- Steps already taken
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What Is Intelligent Automation and Why Do Enterprises Need It?
Our Strengths
- Comprehensive expertise across the full spectrum from RPA to AI-based hyperautomation
- Interdisciplinary team with specialized knowledge in automation, data science, and AI
- Vendor-independent consulting and customized solutions for your individual requirements
- Practical implementation experience and proven methods for successful IA initiatives
Expert Tip
The key to success with Intelligent Automation lies in the right balance between fully automated processes and human expertise. While AI-supported automation can handle standard processes and many complex tasks, humans remain indispensable for strategic decisions, exception handling, and governance.
ADVISORI in Numbers
11+
Years of Experience
120+
Employees
520+
Projects
The successful implementation of Intelligent Automation requires a structured approach that considers both technological and organizational aspects. Our proven approach combines sound process analysis, practical piloting, and systematic scaling for sustainable results.
Our Approach:
Phase 1: Assessment - Analysis of your process landscape, identification of IA potentials, and prioritization based on business value and technical feasibility
Phase 2: Design - Development of an IA strategy and architecture, technology selection, and design concepts for selected processes
Phase 3: Proof of Concept - Implementation of first selected use cases to validate the concept and demonstrate business value
Phase 4: Scaling - Extension to additional processes, establishment of governance structures, and building internal competencies
Phase 5: Continuous Optimization - Monitoring, further development, and improvement of implemented solutions and processes
"Intelligent Automation represents the next evolution of process automation. By combining RPA with artificial intelligence, companies can now automate complex, knowledge-intensive processes that previously required human judgment. This opens up completely new possibilities for efficiency, scalability, and innovation – provided the implementation is strategic and focused on measurable business value."

Asan Stefanski
Head of Digital Transformation
Expertise & Experience:
11+ years of experience, Applied Computer Science degree, Strategic planning and management of AI projects, Cyber Security, Secure Software Development, AI
Our Services
We offer you tailored solutions for your digital transformation
AI-supported RPA Solutions
Extension of classical RPA approaches through integration of AI components for automating more complex processes. We combine the strengths of software robots with machine learning, computer vision, and natural language processing to overcome the limitations of traditional automation.
- Intelligent document processing through combination of OCR and ML-based data extraction
- Automation of email and chat communication with NLP-supported understanding
- Image recognition-based automation with Computer Vision and Deep Learning
- Solid RPA bots with self-learning adaptation capabilities for changing UIs
Process Intelligence and Automated Discovery
Use of Process Mining and AI-supported analyses to identify automation potentials and continuous process optimization. We help you gain data-based insights into your processes and implement automated improvements.
- Process Mining for visualization and analysis of real process flows and variants
- AI-based identification of automation potentials and process improvements
- Task Mining for analysis of user interactions and workstation activities
- Data-driven process optimization before and during automation
Cognitive Automation and Decision Management
Implementation of intelligent decision systems that can make complex assessments based on data, rules, and machine learning models. We develop solutions that replicate and support human decision processes.
- AI-supported decision-making based on historical data and business rules
- Automated prioritization and routing of complex inquiries and cases
- Predictive Analytics for forecasting process outcomes and proactive action
- Continuous learning and adaptation to new business situations
Hyperautomation and End-to-End Process Automation
Orchestration of various automation technologies for comprehensive process automation across departmental and system boundaries. We support you in the comprehensive transformation of your process landscape through intelligent networking.
- Integration of RPA, Process Mining, Workflow Management, and AI components
- Development of API-based integrations and intelligent microservices
- Building an automation ecosystem with reusable components
- Establishment of a Center of Excellence for sustainable scaling and governance
Our Competencies in Intelligent Automation
Choose the area that fits your requirements
What are smart operations? A holistic approach combining artificial intelligence, intelligent automation and real-time data analytics into an adaptive operating model � delivering operational excellence, higher efficiency and data-driven decision-making.
Frequently Asked Questions about Intelligent Automation
What is Intelligent Automation and how does it differ from traditional RPA?
Intelligent Automation (IA) combines Robotic Process Automation (RPA) with artificial intelligence, machine learning, NLP, and computer vision. While traditional RPA only automates rule-based, structured processes with predefined steps, IA also processes unstructured data such as text, images, and speech. The key difference: IA systems continuously learn, make context-aware decisions, and self-optimize – capabilities that pure RPA cannot deliver.
What AI technologies are used in Intelligent Automation?
The key AI technologies in Intelligent Automation are Machine Learning (ML) for pattern recognition and predictions, Natural Language Processing (NLP) for processing human language, Computer Vision and OCR for extracting information from documents and images, and Cognitive Automation for complex decision-making. These technologies are combined with RPA platforms to automate end-to-end processes seamlessly.
Which business processes are suitable for Intelligent Automation?
Processes with high manual effort and error susceptibility are particularly suitable: invoice processing, customer service (chatbots), document classification, compliance checks, credit decisions, and supply chain optimization. Generally, processes benefit most when they involve unstructured data, require decision logic, or span multiple systems – precisely where traditional RPA alone falls short.
What is hyperautomation and how does it relate to Intelligent Automation?
Hyperautomation is the strategy of automating as many business processes end-to-end as possible by orchestrating different technologies – including RPA, AI, process mining, low-code platforms, and decision systems. Intelligent Automation provides the technological foundation for hyperautomation: without combining RPA and AI, end-to-end automation across departmental and system boundaries would not be possible.
What ROI does Intelligent Automation deliver compared to traditional RPA?
Studies show that Intelligent Automation reduces process costs by 40–75% (traditional RPA: 25–50%), cuts throughput times by 50–90%, and minimizes error rates by up to 95%. The higher ROI comes from IA being able to automate knowledge-intensive processes with unstructured data that were inaccessible to pure RPA. Additionally, self-learning systems deliver increasing efficiency gains over time.
How can Intelligent Automation be integrated into existing IT systems?
Intelligent Automation uses APIs, connectors, and UI automation to integrate with existing systems such as ERP, CRM, and legacy applications. A typical approach starts with process mining to identify automation potential, followed by phased implementation – from pilot project to enterprise rollout. An open architecture that orchestrates various IA technologies vendor-independently is essential.
What security and compliance requirements apply to Intelligent Automation?
IA solutions must comply with data protection (GDPR), information security (ISO 27001), and industry-specific regulations (e.g., financial sector requirements). Key aspects include access management for bots, audit trails of all automated decisions, data encryption, and Explainable AI (XAI) for transparent AI decisions. As an ISO 27001-certified consultant, ADVISORI brings comprehensive expertise in security and regulatory compliance.
Latest Insights on Intelligent Automation
Discover our latest articles, expert knowledge and practical guides about Intelligent Automation

ECB Guide to Internal Models: Strategic Orientation for Banks in the New Regulatory Landscape
The July 2025 revision of the ECB guidelines requires banks to strategically realign internal models. Key points: 1) Artificial intelligence and machine learning are permitted, but only in an explainable form and under strict governance. 2) Top management is explicitly responsible for the quality and compliance of all models. 3) CRR3 requirements and climate risks must be proactively integrated into credit, market and counterparty risk models. 4) Approved model changes must be implemented within three months, which requires agile IT architectures and automated validation processes. Institutes that build explainable AI competencies, robust ESG databases and modular systems early on transform the stricter requirements into a sustainable competitive advantage.

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Success Stories
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Your strategic success starts here
Our clients trust our expertise in digital transformation, compliance, and risk management
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