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المستودعات و skills الممثلة

ecs
مديرو الشبكات وأنظمة الحاسوب

AWS ECS container orchestration for running Docker containers. Use when deploying containerized applications, configuring task definitions, setting up services, managing clusters, or troubleshooting container issues.

١٢ مايو ٢٠٢٦
ec2
مديرو الشبكات وأنظمة الحاسوب

AWS EC2 virtual machine management — instances, security groups, key pairs, AMIs, EBS volumes, Auto Scaling Groups, Spot Instances, Session Manager, placement groups, and instance lifecycle automation. Trigger on ANY of these, even when EC2 isn't named…

١٢ مايو ٢٠٢٦
api-gateway
مطوّرو البرمجيات

AWS API Gateway for REST and HTTP API management. Use when creating APIs, configuring integrations, setting up authorization, managing stages, implementing rate limiting, or troubleshooting API issues.

٨ يناير ٢٠٢٦
bedrock
مطوّرو البرمجيات

AWS Bedrock foundation models for generative AI. Use when invoking foundation models, building AI applications, creating embeddings, configuring model access, or implementing RAG patterns.

٨ يناير ٢٠٢٦
cloudformation
مطوّرو البرمجيات

AWS CloudFormation infrastructure as code for stack management. Use when writing templates, deploying stacks, managing drift, troubleshooting deployments, or organizing infrastructure with nested stacks.

٨ يناير ٢٠٢٦
cloudwatch
مديرو الشبكات وأنظمة الحاسوب

AWS CloudWatch monitoring for logs, metrics, alarms, and dashboards. Use when setting up monitoring, creating alarms, querying logs with Insights, configuring metric filters, building dashboards, or troubleshooting application issues.

٨ يناير ٢٠٢٦
cognito
مطوّرو البرمجيات

AWS Cognito user authentication and authorization service. Use when setting up user pools, configuring identity pools, implementing OAuth flows, managing user attributes, or integrating with social identity providers.

٨ يناير ٢٠٢٦
dynamodb
مصممو قواعد البيانات

AWS DynamoDB NoSQL database for scalable data storage. Use when designing table schemas, writing queries, configuring indexes, managing capacity, implementing single-table design, or troubleshooting performance issues.

٨ يناير ٢٠٢٦
عرض 8 من أصل ١٨ skills مجمعة.
agents
مطوّرو البرمجيات

Patterns and architectures for building AI agents and workflows with LLMs. Use when designing systems that involve tool use, multi-step reasoning, autonomous decision-making, or orchestration of LLM-driven tasks.

٦ مايو ٢٠٢٦
context-engineering
مطوّرو البرمجيات

Strategies for managing LLM context windows effectively in AI agents. Use when building agents that handle long conversations, multi-step tasks, tool orchestration, or need to maintain coherence across extended interactions.

٦ مايو ٢٠٢٦
lora
علماء البيانات

Parameter-efficient fine-tuning with Low-Rank Adaptation (LoRA). Use when fine-tuning large language models with limited GPU memory, creating task-specific adapters, or when you need to train multiple specialized models from a single base.

٦ مايو ٢٠٢٦
mlx
علماء البيانات

Running and fine-tuning LLMs on Apple Silicon with MLX. Use when working with models locally on Mac, converting Hugging Face models to MLX format, fine-tuning with LoRA/QLoRA on Apple Silicon, or serving models via HTTP API.

٦ مايو ٢٠٢٦
prompt-engineering
مطوّرو البرمجيات

Crafting effective prompts for LLMs. Use when designing prompts, improving output quality, structuring complex instructions, or debugging poor model responses.

٦ مايو ٢٠٢٦
pytorch
علماء أبحاث الحوسبة والمعلومات

Building and training neural networks with PyTorch. Use when implementing deep learning models, training loops, data pipelines, model optimization with torch.compile, distributed training, or deploying PyTorch models.

٦ مايو ٢٠٢٦
qlora
مطوّرو البرمجيات

Memory-efficient fine-tuning with 4-bit quantization and LoRA adapters. Use when fine-tuning large models (7B+) on consumer GPUs, when VRAM is limited, or when standard LoRA still exceeds memory. Builds on the lora skill.

٦ مايو ٢٠٢٦
rlhf
علماء أبحاث الحوسبة والمعلومات

Understanding Reinforcement Learning from Human Feedback (RLHF) for aligning language models. Use when learning about preference data, reward modeling, policy optimization, or direct alignment algorithms like DPO.

٦ مايو ٢٠٢٦
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