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Purpose

The purpose of this document is to define the conversion approach to create Business Partners - Prospect (BUP002) in S/4 HANA.

In Salesforce, a Prospect is typically used to track potential customers who have shown interest but have not yet been qualified as quotations or sales order. They may include essential details like company information, interaction history, and engagement level.

In SAP S/4HANA, the Prospect is intended to be represented similarly but with a distinct ERP-focused approach. Prospects are classified as BP (Business Partners) under the Customer category, with attributes that allow future conversion into full-fledged customers. 


Conversion Scope

The scope of this document covers the approach for converting active from Legacy Source Systems into S/4HANA following the Business Partners - Prospect (BUP002) Master Data Design Standard.


The data from legacy system includes:

The data from legacy system excludes:


List of source systems and approximate number of records
SourceScope

Source Approx No. of Records

Target SystemTarget Approx

No. of Records

iCareActive Prospect
S4 Hana
CoreCRMActive Prospect
S4 Hana










Additional Information

Multi-language Requirement

Document Management

Legal Requirement

Special Requirements

Due to compliance requirement, there will be one SAP instance for Rest of the World and one for China specifically. For entities in China, the data will be loaded into SAP China instance while the entire migration process will remain the same as rest of the world.

To identify the record is for SAP China Instance, it will use below logic. 




Target Design

The technical design of the target for this conversion approach.

TableFieldData ElementField DescriptionData TypeLengthRequirement






















Data Cleansing

IDCriticalityError Message/Report DescriptionRuleOutputSource System


























Conversion Process

The high-level process is represented by the diagram below:

The ETL (Extract, Transform, Load) process is a structured approach to data migration and management, ensuring high-quality data is seamlessly transferred across systems. Here’s a breakdown of its key components:

1. Extraction
The process begins with extracting metadata and raw data from source systems, such as Syensqo CRM system (i.e., iCare/CoreCRM) periodically. The extracted data is then staged for transformation.


2. Transformation
Once extracted, the data undergoes cleansing, consolidation, and governance. This step ensures data integrity, consistency, and compliance with business rules. The transformation process includes:
- Data validation to remove inconsistencies.
- Standardization to align formats across datasets.
- Business rule application to refine data for operational use.


3. Loading
The transformed data is then loaded into the target S4 Hana system. 



Data Privacy and Sensitivity


Extraction

Extract data from a source into . There are 2 possibilities:

  1. The data exists. connects to the source and loads the data into . There are 3 methods:
    1. Perform full data extraction from relevant tables in the source system(s).
    2. Perform extraction through the application layer.
    3. Only if ; cannot connect to the source, data is loaded to the repository from the provided source system extract/report.
  2. The data does not exist (or cannot be converted from its current state). The data is manually collected by the business directly in . This is to be conducted using DCT (Data Collection Template) in

The agreed Relevancy criteria is applied to the extracted records to identify the records that are applicable for the Target loads

Extraction Run Sheet

Req #Requirement DescriptionTeam Responsible













Selection Screen

Selection Ref ScreenParameter NameSelection TypeRequirementValue to be entered/set





















Data Collection Template (DCT)

Target Ready Data Collection Template will be created for data with exception of some fields which require transformation as mentioned in the transformation rule.

DCT Rules

Field NameField DescriptionRule












Extraction Dependencies

Item #Step DescriptionTeam Responsible













Transformation

The Target fields are mapped to the applicable Legacy field that will be its source, this is a 3-way activity involving the Business, Functional team and Data team. This identifies the transformation activity required to allow to make the data Target ready:

  1. Perform value mapping and data transformation rules.
    1. Legacy values are mapped to the to-be values (this could include a default value)
    2. Values are transformed according to the rules defined in
  2. Prepare target-ready data in the structure and format that is required for loading via prescribed Load Tool. This step also produces the load data ready for business to perform Pre-load Data Validation

Transformation Run Sheet

Item #Step DescriptionTeam Responsible













Transformation Rules

Rule #Source systemSource TableSource FieldSource DescriptionTarget SystemTarget TableTarget FieldTarget DescriptionTransformation Logic









































Transformation Mapping

Mapping Table NameMapping Table Description








Transformation Dependencies

List the steps that need to occur before transformation can commence
Item #Step DescriptionTeam Responsible













Pre-Load Validation

Project Team

Completeness

TaskAction





Accuracy

TaskAction





Business

Completeness

TaskAction





Accuracy

TaskAction





Load

The load process includes:

  1. Execute the automated data load into target system using load tool or product the load file if the load must be done manually
  2. Once the data is loaded to the target system, it will be extracted and prepared for Post Load Data Validation

Load Run Sheet

Item #Step DescriptionTeam Responsible













Load Phase and Dependencies

Configuration

Item #Configuration Item






Conversion Objects

Object #Preceding Object Conversion Approach

list the exact title of the conversion object of only the immediate predecessor – this will then confirm the DDD (Data Dependency Diagram)




Error Handling

Error TypeError DescriptionAction Taken










Post-Load Validation

Project Team

Completeness

TaskAction





Accuracy

TaskAction





Business

Completeness

TaskAction





Accuracy

TaskAction





Key Assumptions

  • Master Data Standard is up to date as on the date of documenting this conversion approach and data load.
  • is in scope based on data design and any exception requested by business.


See also

Change log

Version Published Changed By Comment
CURRENT (v. 1) Apr 22, 2026 12:19 RUAN-ext, Eric
v. 40 Apr 22, 2026 11:51 RUAN-ext, Eric 20260422 update KTOKD
v. 39 Jan 12, 2026 06:13 RUAN-ext, Eric
v. 38 Jan 07, 2026 13:12 RUAN-ext, Eric
v. 37 Dec 09, 2025 07:56 RUAN-ext, Eric
v. 36 Oct 27, 2025 12:03 RUAN-ext, Eric
v. 35 Oct 27, 2025 11:37 RUAN-ext, Eric
v. 34 Oct 26, 2025 14:13 RUAN-ext, Eric
v. 33 Oct 23, 2025 14:33 RUAN-ext, Eric
v. 32 Oct 23, 2025 11:20 RUAN-ext, Eric

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