This study guide is for the IDMA 204 course in the IDMA Associate Insurance Data Manager (AIDM) designation program.
Positively impact insurance by turning messy, risky, and unreliable data into trusted information that strengthens compliance, improves decisions, reduces rework, and supports smarter underwriting, claims, analytics, and customer service. Explore a practical guide to insurance data quality management written for professionals who need data to work in the real world. This book connects data quality, trusted information, and insurance operations in a way that feels immediately useful. It covers the insurance product life cycle, the costs of poor-quality data, and the reasons complete, accurate, timely, and consistent data matter so much in underwriting, policy administration, claims, regulatory reporting, and business performance.
Analyze the core concepts that shape high-quality insurance data. Be able to explain what data is, why metadata and data literacy matter, and how to critique data quality dimensions, such as completeness, accuracy, validity, consistency, currency, integrity, and reasonability, in business settings. Apply proven methods for building a stronger data quality program. Explore data standards, data profiling, quality assessment, controls, issue management, reporting, process improvement, and the evaluation of data quality tools.
Evaluate how data quality affects every major insurance function. Product development, business development, distribution channel management, underwriting, customer service, claims, and legal or regulatory compliance all depend on trustworthy data. This book shows how poor-quality data drives waste, delays, customer frustration, weak decisions, and avoidable risk, while high-quality data opens the door to better pricing, fraud detection, personalization, regulatory response, and business growth.
Whether you are an actuary, a claims professional, business analyst, or almost any of the other key functions, knowledge of data management can help you do your job better and help you prepare, understand, and protect the raw material—the data—so critical to your organization.
IDMA courses, workshops, and forums are highly recommended for a broad audience including new hires, IT and data modeling professionals who want to broaden their knowledge of the business side of insurance data management, anyone who manages and governs data in the industry (statistical, or management information data), and anyone who needs to use or communicate good quality data/information – from actuaries to underwriters, and claims and analytics professionals.
Students who complete the four IDMA-developed courses and successfully pass the examinations are awarded an Associate Insurance Data Manager (AIDM) designation. The IDMA courses may be taken in any order; there are no prerequisites. However, the courses are numbered to indicate a recommended sequence.
For details on the designation requirements, please refer to the IDMA Website at www.IDMA.org.
Les informations fournies dans la section « Synopsis » peuvent faire référence à une autre édition de ce titre.
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Paperback. Etat : new. Paperback. This study guide is for the IDMA 204 course in the IDMA Associate Insurance Data Manager (AIDM) designation program. Positively impact insurance by turning messy, risky, and unreliable data into trusted information that strengthens compliance, improves decisions, reduces rework, and supports smarter underwriting, claims, analytics, and customer service. Explore a practical guide to insurance data quality management written for professionals who need data to work in the real world. This book connects data quality, trusted information, and insurance operations in a way that feels immediately useful. It covers the insurance product life cycle, the costs of poor-quality data, and the reasons complete, accurate, timely, and consistent data matter so much in underwriting, policy administration, claims, regulatory reporting, and business performance.Analyze the core concepts that shape high-quality insurance data. Be able to explain what data is, why metadata and data literacy matter, and how to critique data quality dimensions, such as completeness, accuracy, validity, consistency, currency, integrity, and reasonability, in business settings. Apply proven methods for building a stronger data quality program. Explore data standards, data profiling, quality assessment, controls, issue management, reporting, process improvement, and the evaluation of data quality tools.Evaluate how data quality affects every major insurance function. Product development, business development, distribution channel management, underwriting, customer service, claims, and legal or regulatory compliance all depend on trustworthy data. This book shows how poor-quality data drives waste, delays, customer frustration, weak decisions, and avoidable risk, while high-quality data opens the door to better pricing, fraud detection, personalization, regulatory response, and business growth.Whether you are an actuary, a claims professional, business analyst, or almost any of the other key functions, knowledge of data management can help you do your job better and help you prepare, understand, and protect the raw material-the data-so critical to your organization.IDMA courses, workshops, and forums are highly recommended for a broad audience including new hires, IT and data modeling professionals who want to broaden their knowledge of the business side of insurance data management, anyone who manages and governs data in the industry (statistical, or management information data), and anyone who needs to use or communicate good quality data/information - from actuaries to underwriters, and claims and analytics professionals.Students who complete the four IDMA-developed courses and successfully pass the examinations are awarded an Associate Insurance Data Manager (AIDM) designation. The IDMA courses may be taken in any order; there are no prerequisites. However, the courses are numbered to indicate a recommended sequence.For details on the designation requirements, please refer to the IDMA Website at This study guide is for the IDMA 204 course in the IDMA Associate Insurance Data Manager (AIDM) designation program. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. N° de réf. du vendeur 9798898161149
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