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Attribution: Sourced from muratcankoylan/Agent-Skills-for-Context-Engineering by Muratcan Koylan.
Context is the complete state available to a language model at inference time — system instructions, tool definitions, retrieved documents, message history, and tool outputs. Context engineering is the discipline of curating the smallest high-signal token set that maximizes the likelihood of desired outcomes. Every paragraph below earns its tokens by teaching a non-obvious technique or providing an actionable threshold.
Activate this skill when:
Treat context as a finite attention budget, not a storage bin. Every token added competes for the model's attention and depletes a budget that cannot be refilled mid-inference. The engineering problem is maximizing utility per token against three constraints: the hard token limit, the softer effective-capacity ceiling (typically 60-70% of the advertised window), and the U-shaped attention curve that penalizes information placed in the middle of context.
Apply four principles when assembling context:
System Prompts Organize system prompts into distinct sections using XML tags or Markdown headers (background, instructions, tool guidance, output format). System prompts persist throughout the conversation, so place the most critical constraints at the beginning and end where attention is strongest.
Calibrate instruction altitude to balance two failure modes. Too-low altitude hardcodes brittle logic that breaks when conditions shift. Too-high altitude provides vague guidance that fails to give concrete signals for desired behavior. Aim for heuristic-driven instructions: specific enough to guide behavior, flexible enough to generalize — for example, numbered steps with room for judgment at each step.
Start minimal, then add instructions reactively based on observed failure modes rather than preemptively stuffing edge cases. Curate diverse, canonical few-shot examples that portray expected behavior instead of listing every possible scenario.
Tool Definitions Write tool descriptions that answer three questions: what the tool does, when to use it, and what it returns. Include usage context, parameter defaults, and error cases — agents cannot disambiguate tools that a human engineer cannot disambiguate either.
Keep the tool set minimal. Consolidate overlapping tools because bloated tool sets create ambiguous decision points and consume disproportionate context after JSON serialization (tool schemas typically inflate 2-3x compared to equivalent plain-text descriptions).
Retrieved Documents Maintain lightweight identifiers (file paths, stored queries, web links) and load data into context dynamically using just-in-time retrieval. This mirrors human cognition — maintain an index, not a copy. Strong identifiers (e.g., customer_pricing_rates.json) let agents locate relevant files even without search tools; weak identifiers (e.g., data/file1.json) force unnecessary loads.
When chunking large documents, split at natural semantic boundaries (section headers, paragraph breaks) rather than arbitrary character limits that sever mid-concept.
Message History Message history serves as the agent's scratchpad memory for tracking progress, maintaining task state, and preserving reasoning across turns. For long-running tasks, it can grow to dominate context usage — monitor and apply compaction before it crowds out active instructions.
Cyclically refine history: once a tool has been called deep in the conversation, the raw result rarely needs to remain verbatim. Replace stale tool outputs with compact summaries or references to reduce low-signal bulk.
Tool Outputs Tool outputs typically dominate context — research shows observations can reach 83.9% of total tokens in agent trajectories. Apply observation masking: replace verbose outputs with compact references once the agent has processed the result. Retain only the five most recently accessed file contents; compress or evict older ones.
The Attention Budget For n tokens, the attention mechanism computes n-squared pairwise relationships. As context grows, the model's ability to maintain these relationships degrades — not as a hard cliff but as a performance gradient. Models trained predominantly on shorter sequences have fewer specialized parameters for context-wide dependencies, creating an effective ceiling well below the nominal window size.
Design for this gradient: assume effective capacity is 60-70% of the advertised window. A 200K-token model starts degrading around 120-140K tokens, and complex retrieval accuracy can drop to as low as 15% at extreme lengths.
Position Encoding Limits Position encoding interpolation extends sequence handling beyond training lengths but introduces degradation in positional precision. Expect reduced accuracy for information retrieval and long-range reasoning at extended contexts compared to performance on shorter inputs.
Progressive Disclosure in Practice Implement progressive disclosure at three levels:
Keep the boundary crisp: if a skill or document is activated, load it fully rather than partially — partial loads create confusing gaps that degrade reasoning quality.
Reject the assumption that larger context windows solve memory problems. Processing cost grows disproportionately with context length — not just linear cost scaling, but degraded model performance beyond effective capacity thresholds. Long inputs remain expensive even with prefix caching.
Apply the signal-density test: for each piece of context, ask whether removing it would change the model's output. If not, remove it. Redundant content does not merely waste tokens — it actively dilutes attention from high-signal content.
Agents with filesystem access implement progressive disclosure naturally. Store reference materials, documentation, and data externally. Load files only when the current task requires them. Leverage the filesystem's own structure as metadata: file sizes suggest complexity, naming conventions hint at purpose, timestamps serve as proxies for relevance.
Pre-load stable context for speed (CLAUDE.md files, project rules, core instructions) but enable autonomous exploration for dynamic content. The decision boundary depends on content volatility:
For complex multi-hour tasks, maintain a structured notes file (e.g., NOTES.md) that the agent updates as it works. This enables coherence across context resets without keeping everything in the active window.
Allocate explicit budgets per component and monitor during development. Implement compaction triggers at 70-80% utilization — do not wait for the window to fill. Design systems that degrade gracefully: when compaction fires, preserve architectural decisions, unresolved bugs, and implementation details while discarding redundant outputs.
For sub-agent architectures, enforce a compression ratio: a sub-agent may explore using tens of thousands of tokens but must return a condensed summary of 1,000-2,000 tokens. This converts exploration breadth into context-efficient results.
Example 1: Organizing System Prompts
<BACKGROUND_INFORMATION>
You are a Python expert helping a development team.
Current project: Data processing pipeline in Python 3.9+
</BACKGROUND_INFORMATION>
<INSTRUCTIONS>
- Write clean, idiomatic Python code
- Include type hints for function signatures
- Add docstrings for public functions
- Follow PEP 8 style guidelines
</INSTRUCTIONS>
<TOOL_GUIDANCE>
Use bash for shell operations, python for code tasks.
File operations should use pathlib for cross-platform compatibility.
</TOOL_GUIDANCE>
<OUTPUT_DESCRIPTION>
Provide code blocks with syntax highlighting.
Explain non-obvious decisions in comments.
</OUTPUT_DESCRIPTION>Example 2: Progressive Document Loading
# Instead of loading all documentation at once:
# Step 1: Load summary
docs/api_summary.md # Lightweight overview
# Step 2: Load specific section as needed
docs/api/endpoints.md # Only when API calls needed
docs/api/authentication.md # Only when auth context neededThis skill provides foundational context that all other skills build upon. It should be studied first before exploring:
Internal reference:
Related skills in this collection:
External resources:
Created: 2025-12-20 Last Updated: 2026-03-17 Author: Agent Skills for Context Engineering Contributors Version: 2.0.0
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