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MuleSoft Developer
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Apply correct processors/syntax to process individual records in a collection using For Each scopes, and predict outcomes
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Apply correct processors/syntax to process individual records in a collection using batch scopes, and predict outcomes
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Predict how batch block size and concurrency settings affect batch job throughput.
Learn this conceptApply correct processors/syntax to process individual records in a collection using async scopes, and predict outcomes
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Apply correct processors/syntax to process individual records in a collection using DB listeners, and predict outcomes
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Apply correct processors/syntax to process individual records in a collection using messaging queues, and predict outcomes
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Apply correct processors/syntax to persist data between flow executions
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Mule batch processing splits large datasets into individual records for reliable, asynchronous handling. Inside a Batch Step, processors work on one record at a time, while a Batch Aggregator groups those records into an array for bulk operations. Record variables travel with each record across steps, allowing you to track state or flags throughout the processing pipeline.