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Boost Coding with Cursor AI

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Coursera

Boost Coding with Cursor AI

Hurix Digital

Instructor: Hurix Digital

Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

2 hours to complete
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Intermediate level

Recommended experience

2 hours to complete
Flexible schedule
Learn at your own pace

What you'll learn

  • AI coding assistants work best with clear context—repo links, defined file scope, and explicit constraints—over vague prompts.

  • Scoped, step-by-step change plans turn AI into a reviewable collaborator, producing patches humans can verify and trust.

  • Security, privacy, and secret-management review must shift *left* to the moment code is generated, not deferred to post-merge audit.

  • Treat AI output like any pull request—subject to tests, policy, and peer review—to build sustainable, low-risk AI-augmented teams.

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Recently updated!

June 2026

Assessments

7 assignments¹

AI Graded see disclaimer
Taught in English

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There are 3 modules in this course

You will configure Cursor within an existing development environment and connect it to a Git repository to enable AI-assisted coding workflows. Topics covered include how Cursor integrates with VS Code and JetBrains IDEs, the role of repository indexing in improving AI suggestion quality; how to create and configure a .cursorignore file to exclude build artifacts, dependency directories, and credential files; and how to match AI model selection to task complexity. Through a vignette video, an instructional video, a reading, a screencast follow-along, two coach dialogues, a practice assignment, and a knowledge check quiz, you will build a fully configured Cursor environment with verified repository indexing. By the end of this module, you will be able to set up and validate a repository-aware Cursor environment ready for AI-assisted development.

What's included

3 videos1 reading2 assignments

You will apply scoped prompt techniques to generate AI-assisted refactored code that compiles successfully and is ready for peer review. Topics covered include the three pillars of scoped prompting — file selection, explicit constraints, and step-by-step change plans — how to distinguish modification targets from read-only context files, how to write verifiable constraints that protect function signatures and downstream dependencies, and how to sequence change plan steps so each produces an independently testable output. Through a vignette video, an instructional video, two readings, a coach dialogue, a practice assignment, and a knowledge check quiz, you will design and document a complete scoped prompt plan for a legacy module refactor. By the end of this module, you will be able to construct scoped prompts that produce bounded, reviewable AI-generated patches aligned with their team's codebase.

What's included

2 videos2 readings2 assignments

You will evaluate AI-generated code changes for security, privacy, and secret-management compliance before approving them for merge. Topics covered include why AI-generated code introduces specific security risks such as credential exposure, insecure defaults, and unsafe dependencies, how to apply a shift-left security review approach, and how to use OWASP Top 10 criteria, GitHub Secret Scanning, and the NIST SSDF as evaluation frameworks. Through an instructional video, two readings, a coach dialogue, a role play, a practice assignment, and a knowledge check quiz, you will apply a five-step evaluation procedure — scanning for secrets, applying OWASP criteria, assessing privacy implications, checking dependencies, and documenting findings — to a realistic AI-generated pull request. By the end of this module, you will be able to produce a written security assessment with a justified merge recommendation for any AI-generated contribution.

What's included

1 video1 reading3 assignments

Instructor

Hurix Digital
443 Courses56,264 learners

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Coursera

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¹ Some assignments in this course are AI-graded. For these assignments, your data will be used in accordance with Coursera's Privacy Notice.