Decode Python

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Decode Python

Decode Python

@DecodePython

Decoding #Python #programming for everyone! Master coding with easy-to-follow tutorials, daily tips, and projects. Let's learn and build together. ๐Ÿ

Entrou em Nisan 2019
140 Seguindo827 Seguidores
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LLM vs Agent vs Agentic Workflow vs Multi-Agent System โšก
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Python Developer
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Agentic AI = LLMs + Memory + Tools + Autonomy
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Python patterns look simpleโ€ฆ until you understand the logic behind them ๐Ÿง ๐Ÿ These 4 pattern examples help you practice: โญ nested loops โญ conditions โญ rows and columns logic โญ spacing and output control
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Can you Guess the output ๐Ÿค”
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Programming Journey: Everyone Fights, Python Survives
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Save this if you actually want to build with Python in 2026 ๐Ÿ๐Ÿš€
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Python Developer
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๐Ÿš€ From Punch Cards to AI: The Evolution of Code ๐Ÿ’ป Ever wonder how we got from Ada Lovelaceโ€™s first algorithm in 1843 to the modern languages powering today's AI? Look at how the foundations laid by pioneers like Grace Hopper (COBOL) and Dennis Ritchie (C) paved the way for JavaScript, Python, Rust, and the tech we rely on every single day. What was the very first programming language you learned? Let me know in the comments! ๐Ÿ‘‡ #Programming #CodingLife #TechHistory #SoftwareEngineering #java #rust #Python #JavaScript #WebDevelopment #ComputerScience #CodeNewbie
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What is the Output?๐Ÿ
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Python Developer
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Loops in Python are used to repeat a block of code multiple times. They help make programs shorter, faster, and more efficient by avoiding repeated code. Python mainly uses "for" loops and "while" loops for iteration and repetitive tasks. #python #learningcoding #coder
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Then stop clicking it lol ๐Ÿ˜‚
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Python Developer
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RAG has three generations. Most teams are still on the first one. ๐Ÿง  Classic RAG โ†’ Retrieves Fast, simple, single-hop. Perfect for FAQs and policy lookups. Graph RAG โ†’ Connects Entity-rich and relational. Shines when the answer lives *between* documents, not inside them. Agentic RAG โ†’ Reasons Adaptive, multi-step, self-correcting. The agent chooses its own tools and checks its own work. The upgrade path isnโ€™t about complexity for its own sake โ€” itโ€™s about matching retrieval to the shape of the question. Classic RAG handles โ€œwhat.โ€ Graph RAG handles โ€œhow are these related.โ€ Agentic RAG handles โ€œfigure it out.โ€ Save this for your next architecture review. ๐Ÿ“Œ Which generation is your team building on right now? ๐Ÿ‘‡ Credit: codewithbrij #RAG #AIEngineering #LLM #AgenticAI #generativeai
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Every Python beginner needs this saved ๐Ÿ๐Ÿ’พ Python has a lot of methods, but these are the ones youโ€™ll use again and again.
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Python Developer
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Most people are using AI. Almost nobody is actually getting good at it. They open ChatGPT, type a question, get an answer. Call it "using AI." But there's a massive difference between using a tool and mastering it. I see this all the time with founders and operators I work with. They're not bad at AI. They're just stuck at Level 2 when the real leverage starts at Level 5. I spent years on this. The people compounding the fastest aren't prompting better. They're operating at a completely different tier. Here's the full breakdown of what each level actually looks like: โ†’ Level 1: AI Awareness. You understand what AI is, how LLMs work, and where the limits are. Most people skip this. Big mistake. โ†’ Level 2: AI User. You're prompting, summarising, researching. Saving time. This is where 80% of professionals sit right now. โ†’ Level 3: AI Power User. You know few-shot prompting, prompt chaining, structured outputs. You're building repeatable systems, not one-off queries. โ†’ Level 4: AI Creator. You're using APIs, triggers, logic flows, and integrations to create actual AI-powered assets across text, image, video, and audio. โ†’ Level 5: AI Automation Builder. You're connecting workflows with tools like Zapier, Make, and n8n. RAG, memory systems, tool calling. This is where time starts multiplying. โ†’ Level 6: AI Agent Builder. You're building agents that plan and act. Full stack with frontend, backend, database, and LLM layers working together. โ†’ Level 7: AI Engineer. Python, deployment, evaluation. You're shipping production AI apps, chat systems, SaaS tools. โ†’ Level 8: AI Architect. Security, governance, monitoring, cost control. You're designing enterprise-grade systems at scale. โ†’ Level 9: AI Researcher. You're working on transformers, RLHF, alignment, safety, fine tuning. Pushing what's actually possible. Most professionals will get real business value by reaching Level 5 or 6. You don't need to become a researcher. But you do need to move past "I use ChatGPT sometimes." The infographic maps every level. Save it. Come back to it in 90 days and ask yourself which step you've climbed. If this kind of content is useful to you, The rest of my posts are in the same vein. Worth a follow if you're building seriously with AI. Pass this along to someone on your team who's been meaning to level up their AI skills. They'll get it immediately. Where do you honestly think you sit right now on this scale? Curious what you say.
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๐Ÿค”๐Ÿš€ Comment down your opinion? ๐Ÿ‘‡๐Ÿ”ฅ
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Python Developer
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Fix This Python Code Test your Python skills with this fun debugging challenge. Can you find and fix the error in this code? Perfect for beginners who want to improve problem-solving and coding skills. Save this pin and try it yourself.
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๐Ÿคฃ๐Ÿคฃ๐Ÿคฃ
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๐“๐ก๐ž ๐€๐ˆ ๐ฃ๐จ๐› ๐ฆ๐š๐ซ๐ค๐ž๐ญ ๐ž๐ฑ๐ฉ๐ฅ๐จ๐๐ž๐ 300% ๐ฅ๐š๐ฌ๐ญ ๐ฒ๐ž๐š๐ซ. ๐๐ฎ๐ญ 90% ๐จ๐Ÿ "๐€๐ˆ ๐ž๐ง๐ ๐ข๐ง๐ž๐ž๐ซ๐ฌ" ๐ฐ๐š๐ฌ๐ก ๐จ๐ฎ๐ญ. ๐–๐ก๐ฒ? ๐๐จ ๐ซ๐จ๐š๐๐ฆ๐š๐ฉ. ๐ˆ ๐›๐ฎ๐ข๐ฅ๐ญ ๐ฆ๐ฒ ๐œ๐š๐ซ๐ž๐ž๐ซ ๐Ÿ๐ซ๐จ๐ฆ ๐ณ๐ž๐ซ๐จ. ๐‡๐ข๐ซ๐ž๐ ๐š๐ญ ๐…๐€๐€๐๐† ๐ข๐ง 18 ๐ฆ๐จ๐ง๐ญ๐ก๐ฌ. ๐‡๐ž๐ซ๐ž'๐ฌ ๐ญ๐ก๐ž ๐ž๐ฑ๐š๐œ๐ญ 10-๐ฌ๐ญ๐ž๐ฉ ๐ฉ๐š๐ญ๐ก. ๐…๐จ๐ฅ๐ฅ๐จ๐ฐ ๐ข๐ญ. ๐Ž๐ฐ๐ง ๐ข๐ญ. โ†’ Step 1: Python Foundations Master Python, Jupyter Notebook, VS Code or PyCharm, Git. Code daily. โ†’ Step 2: Maths & Statistics for AI Use NumPy, SciPy, SymPy. Learn via Khan Academy, 3Blue1Brown videos. โ†’ Step 3: Machine Learning Algorithms Dive into scikit-learn, pandas, matplotlib/seaborn, XGBoost/LightGBM. Build predictors. โ†’ Step 4: Deep Learning Foundations Grasp PyTorch, TensorFlow, Keras. Track with Weights & Biases. โ†’ Step 5: Natural Language Processing Work with spaCy, NLTK, Hugging Face, gensim. Process text like a pro. โ†’ Step 6: Transformers & LLM Architectures Leverage Hugging Face Transformers, PyTorch Lightning, ONNX Runtime, OpenAI API. โ†’ Step 7: Fine-Tuning & Custom Model Training Fine-tune via Hugging Face, DeepSpeed, BitsAndBytes. Log with Weights & Biases, MLflow. โ†’ Step 8: LangChain Framework Build chains using LangChain, OpenAI API, Google Gemini, Pinecone, ChromaDB. โ†’ Step 9: LangGraph & RAG Systems Create graphs with LangGraph, LlamaIndex, Redis, Weaviate, FAISS. โ†’ Step 10: MCP & Agentic AI Systems Deploy agents: OpenAI MCP, CrewAI, AutoGen, Anthropic MCP.
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Master these Python list methods and your code gets cleaner fast ๐Ÿโšก From .append() to .sort(), these are the beginner friendly operations youโ€™ll use again and again when working with lists. Save this cheat sheet for your next Python project ๐Ÿ“Œ
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Comment your answer
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Python Developer
Python Developer@PythonDvzยท
What is the differenceโ“
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๐Ÿคฃ๐Ÿคฃ๐Ÿคฃ
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