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John Flack

Menjadi anggota sejak 2025

Diamond League

28134 poin
Model Armor: Mengamankan Deployment AI Earned Agu 9, 2026 EDT
Google Cloud Agent Governance and Security Earned Agu 9, 2026 EDT
Agen AI Perusahaan yang Aman Earned Agu 9, 2026 EDT
Google DeepMind: Melatih Model Bahasa Kecil Earned Agu 8, 2026 EDT
Google DeepMind: 07 Accelerate Your Model Earned Agu 8, 2026 EDT
Google DeepMind: 05 Fine-Tune Your Model Earned Agu 8, 2026 EDT
Google DeepMind: 04 Discover The Transformer Architecture Earned Agu 8, 2026 EDT
Google DeepMind : 08 Capstone: Develop Your Model for Real-World Impact Earned Agu 8, 2026 EDT
Google DeepMind: 03 Design And Train Neural Networks Earned Agu 8, 2026 EDT
Google DeepMind: 02 Represent Your Language Data Earned Agu 8, 2026 EDT
Google DeepMind: 01 Build Your Own Small Language Model Earned Agu 8, 2026 EDT
Mengembangkan Jaringan Google Cloud Anda Earned Agu 5, 2025 EDT
Menyiapkan Lingkungan Pengembangan Aplikasi di Google Cloud Earned Agu 4, 2025 EDT
Membangun Infrastruktur dengan Terraform di Google Cloud Earned Agu 1, 2025 EDT
Responsible AI for Digital Leaders with Google Cloud Earned Jul 26, 2025 EDT
Mengimplementasikan Cloud Load Balancing untuk Compute Engine Earned Jul 3, 2025 EDT
Infrastruktur Google Cloud Elastis: Penskalaan dan Otomatisasi Earned Jul 3, 2025 EDT
Mulai Menggunakan Google Kubernetes Engine Earned Jun 30, 2025 EDT
Infrastruktur Google Cloud yang Penting: Layanan Inti Earned Jun 30, 2025 EDT
Infrastruktur Google Cloud yang Penting: Fondasi Earned Jun 10, 2025 EDT
Dasar-Dasar Google Cloud: Infrastruktur Inti Earned Jun 9, 2025 EDT
Membuat Panduan Belajar Sertifikasi: Persiapan Ujian ACE Earned Jun 9, 2025 EDT

Kursus ini meninjau fitur keamanan penting Model Armor dan membekali Anda untuk bekerja menggunakan layanan ini. Anda akan mempelajari risiko keamanan yang terkait dengan LLM dan cara Model Armor melindungi aplikasi AI Anda.

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As enterprise teams transition to autonomous AI agents, security evolves toward proactive, identity-centric protection. In this course, you will implement a zero-trust security architecture for Cymbal Banking's underwriting platform using the Gemini Enterprise Agent Platform. By deploying a regional Egress Agent Gateway, configuring Model Armor and Semantic Governance (SGP) safety templates, assigning cryptographic SPIFFE identities to agent runtimes, and declaring a VPC-SC perimeter in Terraform, you will protect database boundaries and manage tools with production-grade governance.

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Pelajari cara mengamankan dan mengatur agen AI di Google Cloud. Kursus ini memberikan roadmap praktis untuk mengamankan memori agen, menerapkan kontrol akses yang ketat dengan IAM dan Kontrol Layanan VPC, serta men-deploy batasan percakapan real-time untuk memastikan deployment perusahaan yang aman dan patuh.

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Dapatkan badge keahlian tingkat lanjut Google DeepMind: Melatih Model Bahasa Kecil dengan menyelesaikan kursus ini untuk menunjukkan keahlian Anda dalam hal berikut: merumuskan masalah riset model bahasa di dunia nyata; membangun tokenizer sederhana; menyiapkan set data untuk melatih model bahasa transformer; menjalankan loop pelatihan model bahasa kecil.Akses lab ini tanpa biaya dengan mendaftar ke langganan gratis. Dapatkan 35 kredit gratis setiap bulan.

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Train more powerful models with a single GPU. In this course, you will learn how hardware can speed up model training and the key considerations when training models on a GPU. First, you will learn how to estimate the number of computations and the amount of computer memory required to train large neural networks. You will then discover techniques for reducing the computing and memory requirements when training a model. Techniques which you will apply for fine-tuning a Gemma model with 4 billion parameters. Finally, you will consider the potential environmental impacts of machine learning, with a focus on where questions of energy, water, and e-waste intersect with justice and equity.

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Unleash the power of language models with fine-tuning. In this course, you will learn how to adjust a pre-trained model to a specific task. You will start with full-parameter fine-tuning using a small language model. To tune larger models like Gemma, you will learn parameter-efficient techniques with a focus on LoRA. Finally, you will be briefly introduced to reinforcement learning as an alternative to supervised fine-tuning (SFT). You will also explore how AI is imagined and made sense of in cultural contexts. You will consider why responsible AI is not just about technical safety but also about building governance systems that reflect community values and protect the public interest.

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In this Google DeepMind course you will discover the mechanisms of the transformer architecture. You will investigate how transformer language models process prompts to make context-sensitive next-token predictions. Through practical activities you will explore the attention mechanism, visualize attention weights, and encounter advanced concepts like masked attention and multi-head attention. You will also learn other techniques that are necessary to build neural networks that are well-suited to be used as language models. Finally, through activities on values, stakeholder mapping and community engagement, you will practice concrete tools for ensuring AI projects are developed with communities, not just for them.

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In this Google DeepMind course, you will complete a capstone project that brings together the technical knowledge, ethical awareness, and creative problem-solving skills that you have developed throughout the Google DeepMind: AI Research Foundations curriculum. You will apply what you have learned to a problem of your choosing. You will first plan your project to ensure that you are clear on your project aims and intended impact. You will then collect and prepare data for your model. Finally, you will implement a full fine-tuning workflow using Gemma 3 with low-rank adaptation (LoRA) and evaluate its performance. You will receive guidance, but the emphasis will be on adaptation and experimentation - skills that are essential for applied AI research.

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In this Google DeepMind course you will focus on the training process for machine learning models. You will learn how to spot and mitigate issues when training a model, such as overfitting and underfitting. In practical coding labs, you will implement and evaluate the multilayer perceptron for simple classification tasks. This will provide insights into the mechanics of training a neural network model and the backpropagation algorithm. Research case studies will demonstrate how neural networks power real-world models. Additionally, you will consider the broader social impacts of innovation by looking beyond immediate benefits to anticipate potential risks, safety concerns, and further-reaching societal consequences.

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In this Google DeepMind course you will learn how to prepare text data for language models to process. You will investigate the tools and techniques used to prepare, structure, and represent text data for language models, with a focus on tokenization and embeddings. You will be encouraged to think critically about the decisions behind data preparation, and what biases within the data may be introduced into models. You will analyze trade-offs, learn how to work with vectors and matrices, how meaning is represented in language models. Finally, you will practice designing a dataset ethically using the Data Cards process, ensuring transparency, accountability, and respect for community values in AI development.

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In this Google DeepMind course, you will learn the fundamentals of language models and gain a high-level understanding of the machine learning development pipeline. You will consider the strengths and limitations of traditional n-gram models and advanced transformer models. Practical coding labs will enable you to develop insights into how machine learning models work and how they can be used to generate text and identify patterns in language. Through real-world case studies, you will build an understanding around how research engineers operate. Drawing on these insights you will identify problems that you wish to tackle in your own community and consider how to leverage the power of machine learning responsibly to address these problems within a global and local context.

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Dapatkan badge keahlian dengan menyelesaikan kursus Mengembangkan Jaringan Google Cloud Anda yang berisi pelajaran tentang berbagai cara untuk men-deploy dan memantau aplikasi, termasuk cara: menjelajahi peran IAM dan menambahkan/menghapus akses project, membuat jaringan VPC, men-deploy dan memantau VM Compute Engine, menulis kueri SQL, men-deploy dan memantau VM di Compute Engine, serta men-deploy aplikasi menggunakan Kubernetes dengan beberapa pendekatan deployment.

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Dapatkan badge keahlian dengan menyelesaikan kursus Menyiapkan Lingkungan Pengembangan Aplikasi di Google Cloud, yang memungkinkan Anda mempelajari cara membangun dan menghubungkan infrastruktur cloud yang berpusat pada penyimpanan menggunakan kemampuan dasar teknologi berikut: Cloud Storage, Identity and Access Management, Cloud Functions, dan Pub/Sub.

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Selesaikan badge keahlian Membangun Infrastruktur dengan Terraform di Google Cloud tingkat menengah untuk menunjukkan keterampilan dalam hal berikut: Prinsip Infrastruktur sebagai Kode (IaC) menggunakan Terraform, penyediaan dan pengelolaan resource Google Cloud dengan konfigurasi Terraform, pengelolaan status yang efektif (lokal dan jarak jauh), serta modularisasi kode Terraform agar dapat digunakan kembali dan diatur.

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This course equips learners with the essential knowledge and practical tools to develop and implement artificial intelligence (AI) responsibly. Through an exploration of ethical considerations, best practices, and governance procedures, participants will gain an understanding of how to navigate the complex landscape of AI while upholding ethical standards and minimizing potential risks.

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Selesaikan badge keahlian pengantar Mengimplementasikan Cloud Load Balancing untuk Compute Engine untuk menunjukkan keterampilan dalam hal berikut: membuat dan men-deploy virtual machine di Compute Engine serta mengonfigurasi load balancer aplikasi dan jaringan.

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Kursus akselerasi sesuai permintaan ini memperkenalkan peserta pada infrastruktur dan layanan platform yang komprehensif dan fleksibel yang disediakan oleh Google Cloud. Melalui kombinasi video materi edukasi, demo, dan lab interaktif, peserta akan mengeksplorasi dan men-deploy berbagai elemen solusi, termasuk membuat interkoneksi jaringan yang aman, load balancing, penskalaan otomatis, otomatisasi infrastruktur, serta layanan terkelola.

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Selamat datang di kursus Mulai Menggunakan Google Kubernetes Engine. Jika Anda tertarik dengan Kubernetes, lapisan software yang berada di antara aplikasi Anda dan infrastruktur hardware Anda, maka Anda berada di tempat yang tepat! Google Kubernetes Engine menghadirkan Kubernetes sebagai layanan terkelola di Google Cloud. Tujuan kursus ini adalah untuk memperkenalkan dasar-dasar Google Kubernetes Engine, atau GKE, sebagaimana umumnya disebut, dan cara membuat aplikasi dalam container dan menjalankannya di Google Cloud. Kursus ini dimulai dengan pengantar dasar tentang Google Cloud, lalu dilanjutkan dengan ringkasan container dan Kubernetes, arsitektur Kubernetes, dan operasi Kubernetes.

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Kursus akselerasi sesuai permintaan ini memperkenalkan peserta pada infrastruktur dan layanan platform yang komprehensif dan fleksibel yang disediakan oleh Google Cloud, dengan fokus pada Compute Engine. Melalui kombinasi video materi edukasi, demo, dan lab praktis, peserta akan mengeksplorasi dan men-deploy berbagai elemen solusi, termasuk komponen infrastruktur seperti jaringan, sistem, dan layanan aplikasi. Kursus ini juga membahas cara men-deploy solusi praktis termasuk kunci enkripsi yang disediakan pelanggan, pengelolaan keamanan dan akses, kuota dan penagihan, serta pemantauan resource.

Pelajari lebih lanjut

Kursus akselerasi sesuai permintaan ini memperkenalkan peserta pada infrastruktur dan layanan platform yang komprehensif dan fleksibel yang disediakan oleh Google Cloud, dengan fokus pada Compute Engine. Melalui kombinasi video materi edukasi, demo, dan lab interaktif, peserta akan mengeksplorasi dan men-deploy berbagai elemen solusi, termasuk komponen infrastruktur seperti jaringan, virtual machine, dan layanan aplikasi. Anda akan mempelajari cara menggunakan Google Cloud melalui konsol dan Cloud Shell. Anda juga akan mempelajari peran arsitek cloud, pendekatan desain infrastruktur, dan konfigurasi networking virtual dengan Virtual Private Cloud (VPC), Project, Jaringan, Subnetwork, alamat IP, Rute, dan Aturan firewall.

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Dasar-Dasar Google Cloud: Infrastruktur Inti memperkenalkan konsep dan terminologi penting untuk bekerja dengan Google Cloud. Melalui video dan lab interaktif, kursus ini menyajikan dan membandingkan banyak layanan komputasi dan penyimpanan Google Cloud, bersama dengan resource penting dan alat pengelolaan kebijakan.

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Mempelajari cara membuat panduan belajar yang dipersonalisasi menggunakan Gemini Notebook untuk menghadapi ujian sertifikasi Associate Cloud Engineer. Anda akan meninjau kembali fitur Gemini Notebook, membuat notebook di Gemini Notebook, dan mempelajari cara menggunakan panduan belajar untuk berlatih menghadapi ujian sertifikasi.

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