Sidekick
A local-first terminal companion you can talk to — chat, voice, and 17 tools, on your hardware.
No cloud account required. No API bill by default. Your files, memory, and voice never leave your machine unless you hand it a key.
See it
Slash autocomplete with fuzzy filtering, right in the prompt:
A grounded answer — real tools, real system data, streamed live:
Screenshots are real SVG captures of the app running headless (docs/shot.py), not mockups.
$ sk brief
╭─ sidekick brief Sat 2026-09-19 11:58 ─╮
│ CPU: AMD Ryzen 7 4800H (16 threads) │
│ Mem: 7.2Gi · GPU: GTX 1650 4GB │
│ /dev/nvme0n1p8 133G 117G 8.5G 94% / │
╰─────────────────────────────────────────╯
│ ! disk 94% full — clean ~/Downloads… │
$ sk run "what is the ideal llm i can run on my device"
• qwen3:4b (2.5 GB): fits comfortably in your 4096 MiB VRAM.
• llama3.2:3b (2.0 GB): another good option.
$ sk talk
[Enter] to record, [Enter] to stop. /quit exits.
heard> what files are in the sidekick repo
Why sidekick
| Sidekick | Typical cloud agent | |
|---|---|---|
| Runs fully offline (Ollama) | ✅ | ❌ |
| Voice input, transcribed on your CPU | ✅ | ❌ |
| Copy/paste that works in-terminal | ✅ drag-select, ctrl+y, /copy |
varies |
| Answers grounded in your system, not guessed | ✅ deterministic grounding | prompt-only |
Skills you can read (SKILL.md, incl. superpowers) |
✅ | varies |
| 256-test suite incl. prompt-regression evals | ✅ | rare |
Quickstart
uv tool install sidekick-agent[voice] # global `sk`, STT included
sk init # guided first-run: hardware → model → verify
sk # fullscreen chat — start here (`sk tui` works too)
No clone, no build — installs straight from PyPI. Requires Python 3.12+.
Without [voice] you get everything except Talk/mic (installs on first use instead). Local path needs Ollama (ollama serve, pull qwen2.5-coder:7b for smarts or llama3.2:3b for speed).
Install
| Channel | Command |
|---|---|
| PyPI / uv | uv tool install sidekick-agent[voice] |
| PyPI / pipx | pipx install sidekick-agent[voice] |
| PyPI / pip | pip install sidekick-agent[voice] |
| AUR (Arch) | yay -S python-sidekick-agent |
| conda-forge | conda install -c conda-forge sidekick-agent (feedstock lives in a separate repo) |
The published name is sidekick-agent (the sidekick name is taken on
PyPI); the command stays sk. Version is a single source of truth in
src/sk/__init__.py. Publishing is automatic and credential-free: when a PR
is merged to main of the canonical repo
Faisal01011/sidekick with a bumped
__version__, GitHub Actions trusted-publishes to PyPI and opens a GitHub
Release (forks can never publish) — details in packaging/README.md.
From source (dev):
git clone https://github.com/Faisal01011/sidekick && cd sidekick
uv tool install -e ".[voice]" # editable dev install; STT included
sk doctor
Chat
One input, two surfaces — fullscreen TUI and plain-text REPL share every command:
sk # fullscreen chat with streaming + themes — start here
sk tui --model fast # same, explicit form
sk chat # fallback REPL: dumb terminals, screen readers, broken TUIs
Type / and an autocomplete popup filters all 20+ commands — Enter completes, Tab too, Esc dismisses, ↑/↓ navigates. F1 opens a generated cheatsheet (keys + commands, built from the same tables as the dispatcher, so it can't rot).
TUI keys: Enter sends · ctrl+j/alt+enter newline · ↑/↓ history · ctrl+y copies · ctrl+t push-to-talk · ctrl+b/f scroll · F1 help. Answers stream live with role colors; the footer shows model · session · last-turn time/tokens.
Voice
sk talk [-d SECS] [--stt-model base] [--device hw:2,0] # Enter records, Enter stops
sk mic-test # peak dB + silent/quiet/good verdict
Capture via the OS-native recorder (arecord/ALSA on Linux, sox/ffmpeg on macOS), transcription via local faster-whisper int8, transcript lands editable in the prompt. In the TUI, ctrl+t (or the mic pill) does the same. Voice never leaves your machine; recordings are temp files, deleted after each take.
Providers (BYO key)
sk connect # pick provider → paste key (hidden) → pick model → ping. Done.
One guided flow: numbered provider list (local ones skip keys), live validation before anything saves, curated model list (TTS/image junk filtered, recommended pre-highlighted, Enter accepts), and a 5-token ping instead of a full agent turn. Advanced paths still work: sk auth add/list/status/remove, sk model, sk setup (connect + hook), sk config --provider openai --api-key sk-..., /provider groq inside chat.
Presets: ollama|openai|groq|together|deepseek|openrouter|google|lmstudio|anthropic|custom (anthropic speaks the native Messages API; the rest are OpenAI-compatible). Any OpenAI-compatible endpoint works via --provider custom --base-url https://... --api-key .... Preferred: SIDEKICK_API_KEY env (never touches disk); file keys are chmod 600 and masked in --show.
Command reference
| Command | What |
|---|---|
sk / sk tui [--continue] |
Fullscreen chat, fresh session each launch |
sk chat [--continue] |
Fallback plain-text REPL (dumb terminals, screen readers, TUI issues) |
/sessions, /resume <n>, /sessions delete <n> |
List, switch, delete past sessions |
sk run "task" [--yes] [--model auto|fast|smart|name] |
Single-shot agent run (auto-router picks the model) |
sk brief [-p PATH] [--smart] |
Morning digest: system + git + todos + memories, instant without LLM |
sk remember/recall/memories/forget |
Long-term memory (FTS5 search, auto-injected) |
sk todo add/list/done/clear |
Todos |
sk history / sk oops |
Shell log / explain last failure |
sk export [SESSION] [--out f.md] |
Session transcript as Markdown (turns + tool calls) |
sk audit [--session S] [--format md|json] |
Compliance log: tool runs, approve/deny, local-vs-egress |
sk hook-install [--write] |
Bash/zsh logging hook |
sk skills / sk skills-search / sk skills-install superpowers / sk daemon [--once] / sk daemon-install |
Skill packs (obra/superpowers) / background watcher (systemd) |
sk doctor / sk models / sk config / sk version / sk upgrade [--check] |
Health / models / settings / build / self-update |
sk init / sk setup / sk connect |
Guided first-run / full setup / provider key flow |
Packs use the SKILL.md frontmatter format. The prompt carries a relevance-ranked index; the agent loads full instructions on demand via the skill tool. fast/smart resolve per provider (Ollama: llama3.2:3b/qwen2.5-coder:7b, Groq: gpt-oss-20b/120b).
Architecture
flowchart TB
U([you]) --> CLI[sk / sk run]
U --> TUI[sk tui: autocomplete, streaming, mic pill]
U --> VOICE[sk talk: arecord + faster-whisper]
CLI --> SLASH[slash.py: /commands, no LLM]
TUI --> SLASH
VOICE --> AGENT
CLI --> AGENT[agent.py: stream → tools → synthesize]
TUI --> AGENT
AGENT --> GROUND[deterministic grounding: ~/paths, URLs,\nsysinfo — injected before the model sees the prompt]
AGENT --> TOOLS[tools.py: 17 tools, allowlists,\nhard-blocks, SSRF guard]
AGENT --> MEM[(store.py: history, memories FTS5,\ntodos, shell log)]
AGENT --> SKILLS[skills: relevance-ranked SKILL.md index]
Design bets that paid off: deterministic grounding beats prompt instructions (small models ignore rules but can't argue with injected facts), text-JSON fallback (coders emit tools as text over the OpenAI endpoint), FTS5 over vectors (zero deps, instant, no embedding server on a 4GB box).
Safety
Reads auto-run. Writes, deletes, and general shell need approval (inline [y/N] in TUI, prompt in CLI), HOME//tmp only, ≤100KB, never ~/.ssh, ~/.gnupg, /etc, /usr. shell hard-refuses rm -rf /, mkfs, dd to devices, fork bombs even with approval. read_url/web_search block localhost/private IPs. API keys chmod 600, masked in output.
Tests
uv run --python 3.12 --with ".[test]" pytest tests -q # 256 passed: unit + regression + Textual pilot, no Ollama needed
The eval harness (tests/test_eval.py) locks in every past quality bug as an offline regression test. A suite-wide fixture guarantees tests never touch your live ~/.sidekick/.
Config
~/.sidekick/config.toml (provider, model, base_url override, api_key, …). Env overrides: SIDEKICK_PROVIDER, SIDEKICK_MODEL, SIDEKICK_BASE_URL, SIDEKICK_API_KEY. Data stays home: history.db, skills/, nudges.log, input_history, tui-errors.log.
Per-project config: a .sidekick.toml in any repo layers over the global file (nearest one walking up from cwd). It may set provider, model, max_steps, temperature, plus a [project] table (docs files injected into the prompt, memory_namespace, approved_commands for shell). api_key/base_url are never read from project files (global/env only) — sk config --show prints the active project and any ignored keys. sk --cwd PATH runs any command as if in that directory.
Roadmap
See ROADMAP.md — the shared plan (vision, v0.2.0 / v0.3.0 milestones, done list). It changes by pull request only.
License
MIT — do what you want, shout-outs appreciated.
Release files for sidekick-agent 0.4.0
For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.
Source distribution (sdist)
| File | Size | Uploaded | |
|---|---|---|---|
| sidekick_agent-0.4.0.tar.gz | 118.6 kB | Details |
Built distribution (wheel)
| File | Interpreter | ABI | Platform | Reset |
|---|---|---|---|---|
| sidekick_agent-0.4.0-py3-none-any.whl | Python 3 | none | any | Details |
Total release size: 216.9 kB
Release files / sidekick_agent-0.4.0.tar.gz
| Download URL | sidekick_agent-0.4.0.tar.gz |
|---|---|
| Size | 118.6 kB |
| Tags | Source |
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| Uploaded via |
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