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Data Analytics

Data Analytics

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Dive into the world of Data Analytics – uncover insights, explore trends, and master data-driven decision making. Admin: @HusseinSheikho || @Hussein_Sheikho

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📈 Análisis del canal de Telegram Data Analytics

El canal Data Analytics (@dataanalyticsx) en el segmento lingüístico de Inglés es un actor destacado. Actualmente la comunidad reúne a 28 920 suscriptores, ocupando la posición 4 741 en la categoría Tecnologías y Aplicaciones y el puesto 22 829 en la región Rusia.

📊 Métricas de audiencia y dinámica

Desde su creación el невідомо, el proyecto ha mostrado un crecimiento acelerado, reuniendo a 28 920 suscriptores.

Según los últimos datos del 10 junio, 2026, el canal mantiene una actividad estable. En los últimos 30 días la variación de miembros fue de 490, y en las últimas 24 horas de 16, conservando un alto alcance.

  • Estado de verificación: No verificado
  • Tasa de interacción (ER): El promedio de interacción de la audiencia es 4.41%. Durante las primeras 24 horas tras publicar, el contenido suele obtener 1.27% de reacciones respecto al total de suscriptores.
  • Alcance de las publicaciones: Cada publicación recibe en promedio 1 275 visualizaciones. En el primer día suele acumular 368 visualizaciones.
  • Reacciones e interacción: La audiencia responde de forma activa: el promedio de reacciones por publicación es 2.
  • Intereses temáticos: El contenido se centra en temas clave como sellerflash, buybox, buyer, chaos, effortless.

📝 Descripción y política de contenido

El autor describe el recurso como un espacio para expresar opiniones subjetivas:
Dive into the world of Data Analytics – uncover insights, explore trends, and master data-driven decision making. Admin: @HusseinSheikho || @Hussein_Sheikho

Gracias a la alta frecuencia de actualizaciones (últimos datos recibidos el 11 junio, 2026), el canal mantiene la vigencia y un amplio alcance. La analítica demuestra que la audiencia interactúa activamente con el contenido, lo que lo convierte en un punto de referencia dentro de la categoría Tecnologías y Aplicaciones.

28 920
Suscriptores
+1624 horas
+677 días
+49030 días
Archivo de publicaciones
This channels is for Programmers, Coders, Software Engineers. 0️⃣ Python 1️⃣ Data Science 2️⃣ Machine Learning 3️⃣ Data Visua
This channels is for Programmers, Coders, Software Engineers. 0️⃣ Python 1️⃣ Data Science 2️⃣ Machine Learning 3️⃣ Data Visualization 4️⃣ Artificial Intelligence 5️⃣ Data Analysis 6️⃣ Statistics 7️⃣ Deep Learning 8️⃣ programming Languages ✅ https://t.me/addlist/8_rRW2scgfRhOTc0https://t.me/Codeprogrammer

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🛫 ML Roadmap 2026 — a comprehensive guide to entering ML, LLM, and MLOps A rather insightful ML roadmap has gone viral on GitHub: within it, the author has compiled a path from a foundation in mathematics, NumPy, and Pandas to LLM, agentic RAG, fine-tuning, MLOps, and interview preparation. The repository indeed includes sections on Karpathy, MCP, RLHF, LoRA/PEFT, and system design for AI interviews. Conveniently, this isn't just a list of random links, but rather a structured route through the topics: ▶️ Foundations and tools; ▶️ Classic ML; ▶️ LLM and agents; ▶️ Engineering and MLOps; ▶️ Interview preparation. ➡️ GitHub link: https://github.com/loganthorneloe/ml-roadmap tags: #ml #llm ➡ https://t.me/CodeProgrammer

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🗂 Building our own mini-Skynet — a collection of 10 powerful AI repositories from big tech companies 1. Generative AI for Be
🗂 Building our own mini-Skynet — a collection of 10 powerful AI repositories from big tech companies 1. Generative AI for Beginners and AI Agents for Beginners Microsoft provides a detailed explanation of generative AI and agent architecture: from theory to practice. 2. LLMs from Scratch Step-by-step assembly of your own GPT to understand how LLMs are structured "under the hood". 3. OpenAI Cookbook An official set of examples for working with APIs, RAG systems, and integrating AI into production from OpenAI. 4. Segment Anything and Stable Diffusion Classic tools for computer vision and image generation from Meta and the CompVis research team. 5. Python 100 Days and Python Data Science Handbook A powerful resource for Python and data analysis. 6. LLM App Templates and ML for Beginners Ready-made app templates with LLMs and a structured course on classic machine learning. If you want to delve deeply into AI or start building your own projects — this is an excellent starting kit. tags: #github #LLM #AI #ML ➡️ https://t.me/CodeProgrammer

This channels is for Programmers, Coders, Software Engineers. 0️⃣ Python 1️⃣ Data Science 2️⃣ Machine Learning 3️⃣ Data Visua
This channels is for Programmers, Coders, Software Engineers. 0️⃣ Python 1️⃣ Data Science 2️⃣ Machine Learning 3️⃣ Data Visualization 4️⃣ Artificial Intelligence 5️⃣ Data Analysis 6️⃣ Statistics 7️⃣ Deep Learning 8️⃣ programming Languages ✅ https://t.me/addlist/8_rRW2scgfRhOTc0https://t.me/Codeprogrammer

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🚀 Top 25 Machine Learning Architecture Questions (Every ML Engineer Should Know) Machine Learning isn’t just about training models it’s about designing systems that scale, perform, and survive production. If you’re preparing for ML interviews, system design rounds, or real-world MLOps work, these are the most important ML Architecture questions you should be comfortable answering 🧠 Core ML Architecture Concepts 1️⃣ What is Machine Learning architecture and why does it matter? 2️⃣ Batch inference vs Real-time inference 3️⃣ What is model serving and common tools used 4️⃣ Data drift: what it is and how to handle it 5️⃣ Feature stores and their role in ML systems 6️⃣ What is MLOps and why it’s critical ⚙️ Training, Optimization & Pipelines 7️⃣ Training vs fine-tuning 8️⃣ Regularization techniques (L1, L2, Dropout, Early stopping) 9️⃣ Model versioning in production 🔟 ML pipelines and workflow automation 1️⃣1️⃣ CI/CD for ML systems 🗄 Data, Embeddings & Databases 1️⃣2️⃣ Choosing the right database for ML 1️⃣3️⃣ What are embeddings and why they’re powerful 1️⃣4️⃣ Handling sensitive data (GDPR, HIPAA, security) 📊 Monitoring, Explainability & Scaling 1️⃣5️⃣ Monitoring tools for ML models 1️⃣6️⃣ Explainability vs Interpretability 1️⃣7️⃣ Horizontal vs Vertical scaling 1️⃣8️⃣ Ensuring reproducibility in ML 1️⃣9️⃣ Factors affecting ML latency 🚢 Deployment & Production Strategies 2️⃣0️⃣ Why Docker/containerization matters 2️⃣1️⃣ GPU-accelerated deployment — when & why 2️⃣2️⃣ A/B testing in ML systems 2️⃣3️⃣ Multi-model deployment strategies 2️⃣4️⃣ Model rollback strategies 2️⃣5️⃣ Designing ML architectures for scalability

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Follow the Machine Learning with Python channel on WhatsApp: https://whatsapp.com/channel/0029VaC7Weq29753hpcggW2A

Machine Learning in Python (Course Notes) I just went through an amazing resource on #MachineLearning in #Python by 365 Data Science, and I had to share the key takeaways with you! Here’s what you’ll learn: 🔘 Linear Regression - The foundation of predictive modeling 🔘 Logistic Regression - Predicting probabilities and classifications 🔘 Clustering (K-Means, Hierarchical) - Making sense of unstructured data 🔘 Overfitting vs. Underfitting - The balancing act every ML engineer must master 🔘 OLS, R-squared, F-test - Key metrics to evaluate your models https://t.me/CodeProgrammer || Share 🌐 and Like 👍

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