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HPE2-N69 HP Using HPE AI and Machine Learning Free Practice Exam Questions (2025 Updated)

Prepare effectively for your HP HPE2-N69 Using HPE AI and Machine Learning certification with our extensive collection of free, high-quality practice questions. Each question is designed to mirror the actual exam format and objectives, complete with comprehensive answers and detailed explanations. Our materials are regularly updated for 2025, ensuring you have the most current resources to build confidence and succeed on your first attempt.

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Total 40 questions

Where does TensorFlow fit in the ML/DL Lifecycle?

A.

it helps engineers use a language like Python to code and trail DL models.

B.

it provides pipelines to manage the complete lifecycle.

C.

It is primarily used to transport trained models to a deployment environment.

D.

It adds system and GPU monitoring to the training process.

What is one of the responsibilities of the conductor of an HPE Machine Learning Development Environment cluster?

A.

it downloads datasets for training.

B.

It uploads model checkpoints.

C.

It validates trained models.

D.

It ensures experiment metadata is stored.

You are meeting with a customer, and MUDL engineers express frustration about losing work flue to hardware failures. What should you explain about how HPE Machine Learning Development Environment addresses this pain point?

A.

The solution automatically mirrors the training process on redundant agents, which take over If an issue occurs.

B.

The solution continuously monitors agent hardware and sends out proactive alerts before failed hardware causes training to tail.

C.

The conductor and each of the agents ate deployed in an active-standby model, which protects in case of hardware issues.

D.

The solution can take periodic checkpoints during the training process and automatically restart failed training from the latest checkpoint.

The ML engineer wants to run an Adaptive ASHA experiment with hundreds of trials. The engineer knows that several other experiments will be running on the same resource pool, and wants to avoid taking up too large a share of resources. What can the engineer do in the experiment config file to help support this goal?

A.

Under "searcher," set "max_concurrent_trails" to cap the number of trials run at once by this experiment.

B.

Under "searcher," set "divisor- to 2 to reduce the share of the resource slots that the experiment receives.

C.

Set the "scheduling_unit" to cap the number of resource slots used at once by this experiment.

D.

Under "resources.- set 'priority to I to reduce the share of the resource slots mat the experiment receives.

You are in a directory on your machine with your experiment config file and your model code. You enter this command:

det experiment create myfile.yaml

You receive this error:

det experiment create: error: the following arguments are required: model_def

What should you do?

A.

Re-enter the command with "-m" in which is the code filename.

B.

Make sure that the myfile.yaml tile includes code tor a PyTorchTrial or TFKerasTrial class.

C.

Re-enter the command with a period (.) at the end.

D.

Make sure that you have already logged into the cluster with the "det login’’ command.

What role do HPE ProLiant DL325 servers play in HPE Machine Learning Development System?

A.

They run validation and checkpoint workloads.

B.

They run training workloads that do not require GPUs.

C.

They host management software such as the conductor and HPCM.

D.

They run non-distributed training workloads.

The 10 agents in "my-compute-poor nave 8 GPUs each, you want to change an experiment config to run on multiple GPUs at once. What Is a valid setting for "resources_per_trial?

A.

10

B.

24

C.

12

D.

20

An ML engineer is running experiments on HPE Machine Learning Development Environment. The engineer notices all of the checkpoints for a trial except one disappear after the trial ends. The engineer wants to Keep more of these checkpoints. What can you recommend?

A.

Adjusting how many of the latest and best checkpoints are saved in the experiment config's checkpoint storage settings.

B.

Monitoring ongoing trials In the WebUl and clicking checkpoint nags to auto-save the desired checkpoints.

C.

Double-checking that the checkpoint storage location is operating under 90% of total capacity.

D.

Adjusting the checkpoint storage settings to save checkpoints to a shared file system instead of cloud storage.

You want to set up a simple demo cluster for HPE Machine Learning Development Environment (or the open source Determined Al) on Amazon Web Services (AWS). You plan to use "det deploy" to set up the cluster. What is one prerequisite?

A.

installing the NVIDIA Container Toolkit on your local machine

B.

Manually creating the AWS EC2 instance with a PostgreSQL database

C.

Recording the name of a valid AWS EC2 keypair

D.

Adding Amazon Elastic Kubernetes Services (EKS) to your AWS account

What is one key target vertical (or HPE Machine Learning Development solutions?

A.

Hospitality

B.

K-12education

C.

Retail

D.

Manufacturing

What type of interconnect does HPE Machine learning Development System use for high-speed, agent-to-agent communications?

A.

Remote Direct Memory Access (RDMA) overconverged Ethernet (RoCE)

B.

Slingshot

C.

InfiniBand

D.

Data Center Bridging (OCB)-enabled Ethernet

What distinguishes deep learning (DL) from other forms of machine learning (ML)?

A.

Models based on neural networks with interconnected layers of nodes, including multiple hidden layers

B.

Models defined with Apache Spark rather than MapReduce

C.

Models that are trained through unsupervised, rather than supervised, training

D.

Models trained through multiple training processes implemented by different team members

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Total 40 questions
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