Amazon (MLA-C01) Practice Q&As
Vendor: AmazonExam Code: MLA-C01
Exam Name: AWS Certified Machine Learning Engineer - Associate Exam
Certification(s): Amazon Associate
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Verified Amazon MLA-C01 Exam Actual Questions & Answers by CertsDrive
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The questions for MLA-C01 were last updated On Aug 28,2026
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Amazon MLA-C01 Free Sample Exam Questions 2026
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Total Questions: 85
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A company is using ML to predict the presence of a specific weed in a farmer's field. The company is using the Amazon SageMaker linear learner built-in algorithm with a value of multiclass_dassifier for the predictorjype hyperparameter.What should the company do to MINIMIZE false positives?
Answer: C Next Question -
A company has an ML model that needs to run one time each night to predict stock values. The model input is 3 MB of data that is collected during the current day. The model produces the predictions for the next day. The prediction process takes less than 1 minute to finish running. How should the company deploy the model on Amazon SageMaker to meet these requirements?
Answer: D Next Question -
A company that has hundreds of data scientists is using Amazon SageMaker to create ML models. The models are in model groups in the SageMaker Model Registry.The data scientists are grouped into three categories: computer vision, natural language processing (NLP), and speech recognition. An ML engineer needs to implement a solution to organize theexisting models into these groups to improve model discoverability at scale. The solution must not affect the integrity of the model artifacts and their existing groupings.Which solution will meet these requirements?
Answer: A Next Question -
An ML engineer trained an ML model on Amazon SageMaker to detect automobile accidents from dosed-circuit TV footage. The ML engineer used SageMaker Data Wrangler to create a training dataset of images of accidents and non-accidents.The model performed well during training and validation. However, the model is underperforming in production because of variations in the quality of the images from various cameras.Which solution will improve the model's accuracy in the LEAST amount of time?
Answer: B Next Question -
An ML engineer needs to use AWS services to identify and extract meaningful unique keywords from documents.Which solution will meet these requirements with the LEAST operational overhead?
Answer: D Next Question -
A financial company receives a high volume of real-time market data streams from an external provider. The streams consist of thousands of JSON records every second.The company needs to implement a scalable solution on AWS to identify anomalous data points. Which solution will meet these requirements with the LEAST operational overhead?
Answer: A Next Question -
A company has historical data that shows whether customers needed long-term support from company staff. The company needs to develop an ML model to predict whether new customers will require long-term support.Which modeling approach should the company use to meet this requirement?
Answer: C Next Question -
An ML engineer is developing a fraud detection model by using the Amazon SageMaker XGBoost algorithm. The model classifies transactions as either fraudulent or legitimate.During testing, the model excels at identifying fraud in the training dataset. However, the model is inefficient at identifying fraud in new and unseen transactions.What should the ML engineer do to improve the fraud detection for new transactions?
Answer: D Next Question -
A company has an application that uses different APIs to generate embeddings for input text. The company needs to implement a solution to automatically rotate the API tokens every 3 months. Which solution will meet this requirement?
Answer: A Next Question -
A company has trained an ML model in Amazon SageMaker. The company needs to host the model to provide inferences in a production environment.The model must be highly available and must respond with minimum latency. The size of each request will be between 1 KB and 3 MB. The model will receive unpredictable bursts of requests during the day. The inferences must adapt proportionally to the changes in demand.How should the company deploy the model into production to meet these requirements?
Answer: A Next Question
Total Questions: 85
