Data Governance Controls in Data Governance Dataset (Publication Date: 2024/01)

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Discover Insights, Make Informed Decisions, and Stay Ahead of the Curve:



  • How has data ownership been assigned, and have appropriate controls been established in handling the data?
  • Are additional data level controls required now that cloud services are being introduced?
  • Do the processes effectively allow to maintain and improve the value delivered from the data assets?


  • Key Features:


    • Comprehensive set of 1531 prioritized Data Governance Controls requirements.
    • Extensive coverage of 211 Data Governance Controls topic scopes.
    • In-depth analysis of 211 Data Governance Controls step-by-step solutions, benefits, BHAGs.
    • Detailed examination of 211 Data Governance Controls case studies and use cases.

    • Digital download upon purchase.
    • Enjoy lifetime document updates included with your purchase.
    • Benefit from a fully editable and customizable Excel format.
    • Trusted and utilized by over 10,000 organizations.

    • Covering: Data Privacy, Service Disruptions, Data Consistency, Master Data Management, Global Supply Chain Governance, Resource Discovery, Sustainability Impact, Continuous Improvement Mindset, Data Governance Framework Principles, Data classification standards, KPIs Development, Data Disposition, MDM Processes, Data Ownership, Data Governance Transformation, Supplier Governance, Information Lifecycle Management, Data Governance Transparency, Data Integration, Data Governance Controls, Data Governance Model, Data Retention, File System, Data Governance Framework, Data Governance Governance, Data Standards, Data Governance Education, Data Governance Automation, Data Governance Organization, Access To Capital, Sustainable Processes, Physical Assets, Policy Development, Data Governance Metrics, Extract Interface, Data Governance Tools And Techniques, Responsible Automation, Data generation, Data Governance Structure, Data Governance Principles, Governance risk data, Data Protection, Data Governance Infrastructure, Data Governance Flexibility, Data Governance Processes, Data Architecture, Data Security, Look At, Supplier Relationships, Data Governance Evaluation, Data Governance Operating Model, Future Applications, Data Governance Culture, Request Automation, Governance issues, Data Governance Improvement, Data Governance Framework Design, MDM Framework, Data Governance Monitoring, Data Governance Maturity Model, Data Legislation, Data Governance Risks, Change Governance, Data Governance Frameworks, Data Stewardship Framework, Responsible Use, Data Governance Resources, Data Governance, Data Governance Alignment, Decision Support, Data Management, Data Governance Collaboration, Big Data, Data Governance Resource Management, Data Governance Enforcement, Data Governance Efficiency, Data Governance Assessment, Governance risk policies and procedures, Privacy Protection, Identity And Access Governance, Cloud Assets, Data Processing Agreements, Process Automation, Data Governance Program, Data Governance Decision Making, Data Governance Ethics, Data Governance Plan, Data Breaches, Migration Governance, Data Stewardship, Data Governance Technology, Data Governance Policies, Data Governance Definitions, Data Governance Measurement, Management Team, Legal Framework, Governance Structure, Governance risk factors, Electronic Checks, IT Staffing, Leadership Competence, Data Governance Office, User Authorization, Inclusive Marketing, Rule Exceptions, Data Governance Leadership, Data Governance Models, AI Development, Benchmarking Standards, Data Governance Roles, Data Governance Responsibility, Data Governance Accountability, Defect Analysis, Data Governance Committee, Risk Assessment, Data Governance Framework Requirements, Data Governance Coordination, Compliance Measures, Release Governance, Data Governance Communication, Website Governance, Personal Data, Enterprise Architecture Data Governance, MDM Data Quality, Data Governance Reviews, Metadata Management, Golden Record, Deployment Governance, IT Systems, Data Governance Goals, Discovery Reporting, Data Governance Steering Committee, Timely Updates, Digital Twins, Security Measures, Data Governance Best Practices, Product Demos, Data Governance Data Flow, Taxation Practices, Source Code, MDM Master Data Management, Configuration Discovery, Data Governance Architecture, AI Governance, Data Governance Enhancement, Scalability Strategies, Data Analytics, Fairness Policies, Data Sharing, Data Governance Continuity, Data Governance Compliance, Data Integrations, Standardized Processes, Data Governance Policy, Data Regulation, Customer-Centric Focus, Data Governance Oversight, And Governance ESG, Data Governance Methodology, Data Audit, Strategic Initiatives, Feedback Exchange, Data Governance Maturity, Community Engagement, Data Exchange, Data Governance Standards, Governance Strategies, Data Governance Processes And Procedures, MDM Business Processes, Hold It, Data Governance Performance, Data Governance Auditing, Data Governance Audits, Profit Analysis, Data Ethics, Data Quality, MDM Data Stewardship, Secure Data Processing, EA Governance Policies, Data Governance Implementation, Operational Governance, Technology Strategies, Policy Guidelines, Rule Granularity, Cloud Governance, MDM Data Integration, Cultural Excellence, Accessibility Design, Social Impact, Continuous Improvement, Regulatory Governance, Data Access, Data Governance Benefits, Data Governance Roadmap, Data Governance Success, Data Governance Procedures, Information Requirements, Risk Management, Out And, Data Lifecycle Management, Data Governance Challenges, Data Governance Change Management, Data Governance Maturity Assessment, Data Governance Implementation Plan, Building Accountability, Innovative Approaches, Data Responsibility Framework, Data Governance Trends, Data Governance Effectiveness, Data Governance Regulations, Data Governance Innovation




    Data Governance Controls Assessment Dataset - Utilization, Solutions, Advantages, BHAG (Big Hairy Audacious Goal):


    Data Governance Controls


    Data governance controls refer to the measures put in place to manage and protect data within an organization. This includes establishing clear ownership of data and ensuring that appropriate controls are in place for handling it.


    1. Clear assignment of data ownership: ensures accountability and responsibility for data, reducing confusion and potential conflicts.

    2. Establishment of access controls: ensures that only authorized individuals have access to sensitive data, reducing the risk of data breaches.

    3. Implementation of data classification: helps identify sensitive data, allowing for appropriate levels of protection and handling.

    4. Regular data audits: ensures data is accurate, up-to-date, and compliant with regulations, avoiding potential fines and legal repercussions.

    5. Data training and awareness programs: ensure employees understand their roles and responsibilities in handling data, reducing human error and enhancing overall data security.

    6. Periodic reviews of data policies: allows for continuous improvement of data governance practices, keeping up with changing regulations and industry best practices.

    7. Use of encryption and data masking techniques: adds an extra layer of protection and safeguards sensitive data from unauthorized access.

    8. Integration of data governance with IT systems: streamlines data management processes, increasing efficiency and consistency in data handling.

    9. Adoption of a data retention policy: ensures data is stored and disposed of according to legal and business requirements, minimizing data storage costs and risks.

    10. Collaboration with third-party vendors and partners: helps ensure consistent data handling standards across all parties involved in data management, reducing the risk of data leaks or breaches.

    CONTROL QUESTION: How has data ownership been assigned, and have appropriate controls been established in handling the data?


    Big Hairy Audacious Goal (BHAG) for 10 years from now:

    By 2030, our company will have established a comprehensive and robust set of data governance controls that will ensure complete and effective ownership and management of all data within our organization. Our goal is to become a leader in data governance, setting the standard for how data is handled, controlled, and protected.

    Data ownership will be clearly defined and assigned to specific individuals or teams within our company. This will include clear roles and responsibilities for each data owner, as well as regular training and communication to ensure understanding and compliance.

    Through the use of advanced technology and innovative systems, we will establish a centralized data management platform that will streamline data access, storage, and sharing processes. This platform will also implement strict controls and protocols for data handling, including encryption, access restrictions, and data anonymization when necessary.

    In addition, robust data quality and integrity measures will be put in place, ensuring that all data used within our organization is accurate, consistent, and reliable. This will be achieved through regular data audits and validation processes, as well as implementing data lineage tracking capabilities.

    Our goal will not only focus on internal control measures but also extend to data sharing with external partners or third-party vendors. We will establish strict contracts and agreements to ensure that any data shared is done so securely and with proper consent. Our company will be known for its transparency and ethical practices when it comes to data sharing.

    We believe that by achieving this BHAG, we will not only protect the privacy of our customers and employees, but also maximize the potential of our data assets. With a strong foundation of data governance controls, we will be able to make more informed business decisions, improve operational efficiency, and maintain a competitive edge in the increasingly data-driven business landscape.

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    Data Governance Controls Case Study/Use Case example - How to use:



    Client Situation:
    ABC Corporation is a global organization that specializes in providing software solutions to various industries. With operations spanning across multiple countries and diverse clients, the company handles a large amount of sensitive data on a daily basis. The data includes customer information, financial data, and intellectual property. As a result, the company realized the need for effective data governance controls to ensure the security, integrity, and compliance of their data.

    Consulting Methodology:
    In order to address the client′s data governance needs, our consulting team followed a structured methodology that involved thorough research, evaluation, and implementation of suitable controls. The following steps were undertaken:

    1. Assessment of Current State:
    The first step was to assess the current state of data governance within the organization. This involved conducting interviews with key stakeholders, reviewing existing policies and procedures, and analyzing data management practices. This helped in identifying any gaps or weaknesses in the current data governance framework.

    2. Defining Data Ownership:
    Based on the findings of the assessment, the next step was to define data ownership within the organization. This involved identifying the different types of data, assigning roles and responsibilities for data ownership, and establishing processes for managing data ownership.

    3. Establishment of Data Governance Controls:
    Using industry best practices and regulatory requirements as a guide, our consulting team worked with the client to establish data governance controls that would fit their specific needs. This included defining roles and responsibilities for data handling, implementing access controls, data classification, and data encryption.

    4. Implementation of Data Governance Policies:
    Once the controls were identified, our team helped the client in implementing them effectively. This involved creating and disseminating data governance policies, training employees on data handling practices, and integrating the controls into existing systems and processes.

    Deliverables:
    As a result of our consulting engagement, the following deliverables were provided to the client:

    1. Data Governance Framework:
    A comprehensive framework that defined the roles and responsibilities of data ownership, the policies and procedures for data handling, and the controls in place to ensure data security and compliance.

    2. Data Governance Policies:
    A set of policies that outlined the guidelines for data management, including data classification, access controls, and data encryption.

    3. Training Materials:
    Training materials were developed to educate employees on data governance best practices, their roles and responsibilities, and the consequences of non-compliance.

    Implementation Challenges:
    The implementation of data governance controls faced some challenges, including resistance from employees who were accustomed to a less rigid data management approach. This was addressed by conducting training sessions and emphasizing the importance of data governance in protecting both client and company data. Another challenge was integrating the controls into existing systems and processes without disrupting the day-to-day operations. This was overcome by carefully planning and implementing the controls in a phased manner.

    KPIs:
    The success of the data governance controls put in place was measured using the following key performance indicators (KPIs):

    1. Data Breaches:
    The number of data breaches before and after the implementation of data governance controls was compared to measure the effectiveness of the controls in preventing unauthorized access or leakage of sensitive data.

    2. Compliance:
    The organization′s compliance with regulatory requirements related to data management was monitored to ensure that the controls were in line with industry standards.

    3. Employee Training:
    The number of employees who completed the data governance training and their understanding of the policies and procedures was tracked to ensure proper adoption and compliance.

    Other Management Considerations:
    Effective data governance is an ongoing process and requires continuous monitoring and review to maintain its effectiveness. It is essential for the top management to support and champion this initiative in order for it to be successful. Additionally, regular updates and communication to employees regarding any changes in policies or procedures are crucial for ensuring continued compliance.

    Citations:

    - Data Governance Best Practices: Governing Big Data Across Corporate Enterprises. SAS Institute Inc. https://www.sas.com/content/dam/SAS/documents/whitepaper/whitepaper-data-governance-best-practices-106429.pdf
    - Developing a Data Governance Framework: A Comprehensive Guide for Organizations. Deloitte Insights. https://www2.deloitte.com/content/dam/Deloitte/uk/Documents/consulting/deloitte-uk-data-governance-framework.pdf
    - The State of Data Governance: A Global Survey Report. MiGghtyHive. https://www.mightyhive.com/wp-content/uploads/2020/02/The-State-of-Data-Governance-A-Global-Survey-Report.pdf
    - Data Governance and Security. Harvard Business Review. https://hbr.org/2021/07/data-governance-and-security
    - Data Governance: Creating Value from Information Assets. IBM Institute for Business Value. https://www.ibm.com/downloads/cas/Z9YXAV9P

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