Rugged Ridge 2018-20 Jeep Wrangler JL / 2020 Jeep Gladiator All Terrain Door Entry Guard Kit
SKU: 40837862626

Rugged Ridge 2018-20 Jeep Wrangler JL / 2020 Jeep Gladiator All Terrain Door Entry Guard Kit

Sale price$92.69 Regular price$102.99
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Description

Rugged Ridge 2018-20 Jeep Wrangler JL / 2020 Jeep Gladiator All Terrain Door Entry Guard KitRugged Ridge created these All Terrain Door Entry Guards to prevent the unsightly scuffs and scratches that happen just by climbing in and out of your Jeep. Defending those unprotected door sills couldn? t be any easier. When you install these Door Entry Guards, you? ll be preserving your precious paint and adding a cool accent at the same time. Constructed of a super tough thermoplastic, each guard features an inlaid all terrain tread pattern so they

Rugged Ridge created these All Terrain Door Entry Guards to prevent the unsightly scuffs and scratches that happen just by climbing in and out of your Jeep. Defending those unprotected door sills couldn?t be any easier. When you install these Door Entry Guards, you?ll be preserving your precious paint and adding a cool accent at the same time. Constructed of a super-tough thermoplastic, each guard features an inlaid all-terrain tread pattern so they look just as great as they work- whether the doors are on or off. And installation is a breeze with the provided automotive-grade adhesive foam tape. Kit includes pieces for both 2- and 4-Door Wrangler JL and Gladiator JT models. Patent No. D627,285

This Part Fits:

Year Make Model Submodel
2021 Jeep Gladiator 80th Anniversary
2020,2022 Jeep Gladiator Altitude
2023 Jeep Gladiator Freedom
2021-2023 Jeep Gladiator High Altitude
2025 Jeep Gladiator High Tide
2020 Jeep Gladiator Launch Edition
2020-2025 Jeep Gladiator Mojave
2024-2025 Jeep Gladiator Mojave X
2025 Jeep Gladiator NightHawk
2020-2023 Jeep Gladiator Overland
2020-2025 Jeep Gladiator Rubicon
2024-2025 Jeep Gladiator Rubicon X
2020-2025 Jeep Gladiator Sport
2020-2025 Jeep Gladiator Sport S
2023,2025 Jeep Gladiator Texas Trail
2021-2025 Jeep Gladiator Willys
2021-2023 Jeep Gladiator Willys Sport
2023 Jeep Wrangler High Altitude
2023-2024 Jeep Wrangler High Altitude 4xe
2023 Jeep Wrangler High Tide
2021 Jeep Wrangler Islander
2018-2021 Jeep Wrangler Rubicon
2023-2024 Jeep Wrangler Rubicon 392
2023-2024 Jeep Wrangler Rubicon 4xe
2023-2024 Jeep Wrangler Sahara
2023-2024 Jeep Wrangler Sahara 4xe
2023 Jeep Wrangler Sahara Altitude
2018-2021 Jeep Wrangler Sport
2023 Jeep Wrangler Sport Altitude
2018-2021 Jeep Wrangler Sport S
2021 Jeep Wrangler Unlimited 80th Anniversary
2021 Jeep Wrangler Unlimited Freedom
2021-2022 Jeep Wrangler Unlimited High Altitude
2021-2022 Jeep Wrangler Unlimited High Altitude 4xe
2022 Jeep Wrangler Unlimited High Tide
2021 Jeep Wrangler Unlimited Islander
2018-2019 Jeep Wrangler Unlimited Moab
2018-2022 Jeep Wrangler Unlimited Rubicon
2021-2022 Jeep Wrangler Unlimited Rubicon 392
2021-2022 Jeep Wrangler Unlimited Rubicon 4xe
2018-2022 Jeep Wrangler Unlimited Sahara
2021-2022 Jeep Wrangler Unlimited Sahara 4xe
2021-2022 Jeep Wrangler Unlimited Sahara Altitude
2018-2022 Jeep Wrangler Unlimited Sport
2021-2022 Jeep Wrangler Unlimited Sport Altitude
2018-2022 Jeep Wrangler Unlimited Sport S
2021-2022 Jeep Wrangler Unlimited Willys
2021-2022 Jeep Wrangler Unlimited Willys Sport
2023-2024 Jeep Wrangler Willys 4xe
2018 Jeep Wrangler JK Rubicon
2018 Jeep Wrangler JK Sahara
2018 Jeep Wrangler JK Sport
2018 Jeep Wrangler JK Sport S
2018 Jeep Wrangler JK Unlimited Rubicon
2018 Jeep Wrangler JK Unlimited Sahara
2018 Jeep Wrangler JK Unlimited Sport
2018 Jeep Wrangler JK Unlimited Sport S
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SKU: 40837862626

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O
Om S
Port Orchard, US
★★★★★ 4
Title: Really Good Book for Learning LLMs
Format: Paperback, Format: Paperback
I picked up this book after struggling with LLM implementation at work. Ken Huang explains things clearly without too much technical jargon. The book covers everything from data preparation to building AI agents. I especially liked the chapters on RAG and prompting techniques - they helped me improve my current projects. The code examples actually work, which is nice. Some parts are pretty advanced, so you need basic Python knowledge. I had to read a few chapters twice to fully get it. The fairness and bias detection section was eye-opening. Good practical advice throughout. Not just theory - real solutions you can use. Worth the money if you're serious about LLM development. Recommended for anyone building AI systems professionally.
WAS THIS REVIEW HELPFUL?YesReportShare
Reviewed in the United States on July 25, 2025
J
Jiewen Wang
Boise, US
★★★★★ 5
a comprehensive guide at the intersection of generative AI and cybersecurity
Format: Kindle
This book blends deep theoretical foundations with practical frameworks and forward-looking strategies. From adversarial risk models to actionable guidance using OWASP Top 10 for LLMs and the NIST AI RMF, it offers both technical depth and operational clarity. What makes it stand out is its balance of academic rigor and real-world CISO insights, providing a holistic perspective on securing GenAI systems. While it leans enterprise-focused, the content remains accessible to security engineers, risk managers, and policy leaders alike. Generative AI Security is a timely and essential read for anyone working to deploy GenAI responsibly—building systems with both power and integrity in today’s fast-evolving threat landscape.
WAS THIS REVIEW HELPFUL?YesReportShare
Reviewed in the United States on July 2, 2025
N
Nader
Grantham, US
★★★★★ 1
Light on substance and heavy on flaws
Format: Paperback
The book has a great list of topics, but fails to provide much substance any of them. Most of the provided code is just comments that avoid the actual crux of the issues being discussed. (e.g. #implement the logic to validate XYZ - while the whole point of this chapter is teach how the heck we validate XYZ!) Some parts are plain wrong, for example the part on Graph based RAG is fundamentally flawed as it assumes the text embedding and the graph embedding are in the same latent space. (This is one of many more examples). Seems like the book was rushed, and the author has limited hands on experience (if any). At least we know based on the amount of flaws that it was not written by an LLM
WAS THIS REVIEW HELPFUL?YesReportShare
Reviewed in the United States on December 31, 2025
N
noam barkay
Carnegie, US
★★★★★ 5
Excellent book to truly understand LLM design patterns
Format: Paperback
I just finished reviewing Ken Huang's pocket book on LLM Design Patterns, and WOW what an amazing resource! This book is excellent if you want to truly understand how to create and enhance intelligent AI language models, all that in your pocket! Ken makes the difficult things seem surprisingly easy, and that's the real MAGIC. - How to prepare your data for training by making it extremely clean. Developing the brains: the practical aspects of training, optimizing, and maintaining your models. - Learn amazing prompting techniques (such as Chain-of-Thought and Tree-of-Thoughts) to improve your AI's reasoning and problem-solving abilities. Learn everything there is to know about RAGs so that your LLM can incorporate outside expertise. - It also delves into creating "agentic" AI that is capable of action and planning (not only simple plan and execute but also enhanced techniques like ReWoo!) Really, this feels like a useful toolkit, so Ken thank you for that resource Thanks, Idan Habler
WAS THIS REVIEW HELPFUL?YesReportShare
Reviewed in the United States on June 9, 2025
R
Ryan Meyer
Carnegie, US
★★★★★ 3
A Broad Overview, But Light on Modern Fine-Tuning
Format: Paperback
I'm currently really interested in fine-tuning LLMs and recently completed my first LoRA-based fine-tuning on a quantized model. I came to this book looking for more detail on fine-tuning. While it touches on the topic, I found the content didn’t quite align with the current state of the field in 2025. Techniques like LoRA, QLoRA, and PEFT weren’t really covered, and the material leaned more toward what I think are older or lower level approaches. That made it harder to connect with what I’m actually working on. That said, when I shifted to other chapters — like the sections on prompt engineering techniques such as Chain of Thought (CoT) and Tree of Thought (ToT) — I found more value. These sections were clearer, and I picked up a few practical insights, like using few-shot examples that walk through the CoT reasoning process. That’s not something I’ve tried before, and I can see how it might help smaller models that struggle with any type of reasoning tasks. Overall, the book feels more like a broad overview of all LLM concepts. For someone exploring many topics across the LLM ecosystem, it offers a wide-ranging introduction. But for readers like me who are actively trying to learn and apply techniques like fine-tuning and quantization, it may leave you wanting up-to-date guidance.
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Reviewed in the United States on August 10, 2025

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