Splunk is from spelunking: caving, a lamp, feeling your way along in the dark. An honest description of search-driven investigation -- powerful with expertise, unforgiving without it. Cribl is from cribble, to sift, from Latin cribrum, a sieve; the same root gives engraving its maniere criblee, the dotted ground punched into a plate. Both senses land together: the data is a medium to be worked and thinned on the way through. A name about the material, not the destination. A cairn is a stack of stones on open ground, where the path is not obvious, doing one job -- somebody came this way, and this is the way. Three of its properties map onto things this project already does rather than things it claims. It is left by whoever went first for whoever comes next, which is the runbook culture and the reason every phase records what was actually run including the failures. Anyone passing adds to it, which is AGPLv3 throughout and an egress path that helps data leave. And you can see it from a distance in daylight, which is a legible query language, an AI that explains rather than divines, and a plan that publishes what has not been proven. Written into positioning.md rather than kept as a marketing note because it is a reason the position coheres, not decoration on top of it. Also noted there that it should not be turned into a slogan.
308 lines
14 KiB
Markdown
308 lines
14 KiB
Markdown
# Positioning: Splunk and Cribl
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Cairn OBS has always been positioned against Splunk. It is now also
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positioned against Cribl. Those are not the same claim, and holding both
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honestly changes what this project has to build.
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This document reconciles them, and derives the feature and roadmap
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consequences. It is the argument; `/docs/status.md` is the record of what
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is actually built.
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## They are not the same competitor
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**Splunk is a destination.** Data lands in it, is indexed, searched,
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dashboarded and alerted on. Cairn OBS replaces it: same job, different
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storage economics. Every phase through 7 was built for that fight, and
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that positioning is unchanged.
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**Cribl is the road to the destination.** Cribl Stream sits between the
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sources and wherever the data is going, and routes, reduces, enriches,
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redacts, transforms and replays it on the way. Cribl Edge manages the
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agent fleet that feeds it. Neither is a place data lives — they are
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control over data in motion.
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So "we compete with Splunk and Cribl" is not one claim made twice. It is
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a claim about the destination and a claim about the road.
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## The awkward part, stated plainly
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**Most people buy Cribl because Splunk is expensive per gigabyte.** The
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pipeline pays for itself by dropping, sampling and trimming data before
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it reaches a licence priced by volume.
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That creates a tension a cost-led project has to face rather than paper
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over:
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- If Cairn OBS is genuinely cheap per GB, the main reason to buy Cribl
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*for Cairn OBS* is gone. Replacing Splunk with something cheap removes
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the need for the tool that exists to make Splunk affordable.
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- Which means the strongest combined pitch is **one system where there
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were two** — not "we are also a pipeline vendor".
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- But that pitch only survives contact with a buyer if Cairn OBS also
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does the things people buy Cribl for that are *not* about cost.
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Those things are real, and they do not go away when storage gets cheap:
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| Reason to run a pipeline | Cheaper storage makes it… |
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| Cut volume to fit a licence | mostly moot |
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| Route one stream to several destinations | unchanged |
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| Redact PII/PCI *before* data leaves the network | unchanged |
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| Keep an auditable archive and replay from it | unchanged |
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| Avoid lock-in to any one analytics vendor | unchanged |
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| Manage agent config across a fleet | unchanged |
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Four of those six are about **control**, not spend. That is the ground
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Cairn OBS has to compete on, and it is ground worth taking: control is a
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better story than cost anyway, because cost advantages get matched and
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control advantages are architectural.
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## The uncomfortable consequence
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To compete with Cribl at all, Cairn OBS has to be able to **send data to
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other vendors' systems** — S3, Splunk HEC, Elastic, OTLP, Kafka, another
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SIEM. That means building features whose explicit purpose is to help data
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leave this platform.
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Most vendors will not do that, which is exactly why it is worth doing. It
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is also consistent with what this project already is: AGPLv3 throughout,
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no commercial-license wall, no proprietary storage format. A project that
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refuses lock-in in its licence and then builds it into its egress would
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be lying about itself.
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It should be stated as a deliberate decision rather than discovered later
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as a surprise: **Cairn OBS will make it easy to send your data somewhere
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else, including to a competitor.**
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## What exists today
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The data path is already a pipeline in shape. It exposes none of the
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controls of one.
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```
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agent (Rust) ingest (Go)
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sources ─► parse ─► batch ─► mTLS gRPC ─► Redpanda ─► normalize ─► ClickHouse
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journald └► Tantivy
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file tail
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Event Log / ETW
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```
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- **The agent** reads, parses RFC 5424 where it applies, batches and
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ships. It cannot filter, drop, sample, mask, enrich or re-route
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anything.
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- **Ingest** normalises the wire record into the ClickHouse row shape and
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writes it. `internal/normalize` is the only per-record processing that
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exists, and it is a schema mapping, not a rule engine.
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- **There is exactly one destination**, and it is us.
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Redpanda sits in the middle of that path already, which is the natural
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seam for stream processing. Nothing uses it that way yet.
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## What this adds to the feature set
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Grouped by how much is genuinely new versus how much is exposing what the
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architecture already has.
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### 1. A processing pipeline — the substantial one
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Rule-based work on records in flight: drop and keep fields, mask and
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redact, rename, derive, parse (regex/grok/JSON into fields), sample,
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suppress duplicates, and aggregate repetitive events into counts.
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**The design decision that has to be made first: where it runs, and in
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what language.**
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Running it *on the agent* is the cheapest possible place — data reduced
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before the wire costs nothing to transport, store or index, and it is the
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only place PII can be removed before it crosses the network. It is also
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where this project has a structural advantage: the agent is a
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statically-linked musl Rust binary, where Cribl Edge is considerably
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heavier.
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But it collides with a non-negotiable constraint. Cribl's rule language
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is JavaScript; embedding a JS engine in the agent would end "no glibc
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runtime deps, one static binary" as a claim. **The recommendation is a
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declarative rule DSL** — matchers and typed actions, no arbitrary code —
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serialised into the agent config. Less expressive than Cribl on purpose:
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smaller, auditable, safe to push to ten thousand hosts, and impossible to
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turn into a remote-code-execution surface.
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Central processing at the ingest tier is the complement: rules that need
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context the agent lacks, and a place to change behaviour without a fleet
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rollout.
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### 2. Routing and multiple destinations
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Conditional routing — this source, matching this rule, to these
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destinations. Needs per-destination retry, backpressure and delivery
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accounting, which is a materially harder problem than one destination
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that is always us. Sinks worth having: object storage, Splunk HEC,
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Elastic bulk, OTLP, Kafka, plain HTTP.
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### 3. Archive and replay
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An archive format on object storage, and the ability to read it back into
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the pipeline or into a destination later. This is the feature that makes
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aggressive reduction safe: you can drop something from the hot path
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precisely because you can get it back. It also folds in the retention/TTL
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question `/docs/architecture.md` currently lists as unresolved and
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deferred — that question stops being deferrable here.
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### 4. Fleet management
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Central agent configuration: author, version, roll out, and observe. Much
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of the substrate exists — agents check in, report their own version and
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source config, and there is an Agents page that already knows when one
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goes stale. What is missing is the direction of travel: config currently
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flows *to* the agent from the host, not from the platform.
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### 5. Schema normalisation as a feature, not a detail
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OTel semantic conventions are already the stated default schema. Mapping
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between OTel, ECS and Splunk CIM is what makes a router useful rather
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than merely functional — it is the difference between forwarding bytes
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and delivering something the destination understands.
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### 6. Search in place — noted and not proposed
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Cribl Search queries object storage without ingesting first. It is a
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genuinely different execution model to the one in
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`/docs/architecture.md`, and adopting it would be a second storage engine
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rather than a feature. Recorded here so the omission is visible, not
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because it is next.
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## The third axis: AI that runs on your hardware
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Cost is the argument against Splunk. Control is the argument against
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Cribl. AI is the third, and it is the one where the difference is not a
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feature comparison but a deployment model.
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**Plain-English querying is an option today and stays one.** Phase 7
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shipped it: ask a question in English, get a structured query back with
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an explanation, editable before it runs. It is an alternative to writing
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the query, never a replacement for being able to — every generated query
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compiles through the same Phase 2 IR and executor as a hand-written one,
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with the same tenant scoping, cost guardrails and audit logging. The
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model suggests; it does not get a private path to the data.
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**AI-assisted analysis and explanation is the end state, and is not
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built.** Query authoring answers "how do I ask this". The harder and more
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valuable question is "what does this mean" — reading a result set and
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saying what changed, explaining why an alert fired and what preceded it,
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summarising an incident from the records around it, and pointing at what
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to look at next. That is the goal; today only the authoring half exists.
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**Local is the non-negotiable part.** The default deployment runs a
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self-hosted model through Ollama — `qwen2.5-coder`, Apache-2.0 weights
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chosen deliberately so Phase 6's licence work survives contact with the
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model. A cloud adapter exists, opt-in and off by default. Nothing leaves
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the network to make any of this work.
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That is the whole position, and it is worth stating as such rather than
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as a feature bullet:
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| | Where the model runs | What leaves your network |
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| Splunk | vendor's cloud | your queries and results |
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| Cairn OBS | your hardware, by default | nothing |
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Logs are the most sensitive unstructured data most organisations hold —
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credentials in stack traces, customer identifiers, internal hostnames and
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topology. An assistant that reads them is either running where the data
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already is, or it is a data-egress decision wearing a helpful interface.
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Anyone who has had to answer that question in a procurement review knows
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which of those is easier to sign off.
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This also constrains what can be promised. A 7B model on a customer's own
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hardware will not match a frontier model on raw capability, and the
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honest claim is not that it is as clever — it is that it is good enough
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at a bounded task, and that it runs somewhere you control. Analysis
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features have to be designed to that budget rather than assuming
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somebody's API is one call away.
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## Roadmap consequence
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Phases 0–7 built the destination. This is a second axis, not a
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continuation of the first, and it is worth numbering separately rather
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than appending forever to a list that was about analytics.
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- **Phase 8 — Processing.** The rule DSL, agent-side execution,
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ingest-side execution, and the tests that prove a rule does the same
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thing in both places.
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- **Phase 9 — Routing and sinks.** Multiple destinations, conditional
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routing, per-destination delivery guarantees, and the first three
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sinks: object storage, OTLP, Splunk HEC.
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- **Phase 10 — Archive and replay.** The archive format, retention and
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tiering, and replay back into the pipeline or out to a destination.
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- **Phase 11 — Fleet.** Config authored centrally, versioned, rolled out
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and observed.
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Ordering is deliberate. Processing without routing still pays for itself
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by shrinking what is stored; routing without processing forwards
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everything and helps nobody. Archive depends on both. Fleet is last
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because it manages configuration the earlier phases define — building it
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first would mean managing settings that do not exist yet.
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## The names already argue the case
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Worth writing down because it is useful, not only because it is neat: the
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three names describe three different relationships to not knowing where
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you are.
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**Splunk** is from *spelunking* — the founders have always said so. Caving.
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You go down into the dark with a lamp and feel your way along, and what
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you find depends on how good you are at feeling around. That is an
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honest description of search-driven investigation: powerful in expert
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hands, and unforgiving if you do not already know roughly what you are
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looking for. Every organisation that has watched its Splunk expertise
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walk out of the door with one person knows the shape of that.
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**Cribl** is from *cribble* — to sift, from Latin *cribrum*, a sieve. The
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same root gives engraving its *manière criblée*, the dotted ground
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punched into a plate to make a texture. Both senses land in the same
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place: the data is a medium to be worked, sifted, thinned and textured on
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its way through. Which is exactly what the product is, and it is a name
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about the *material*, not about where anyone is going.
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**A cairn** is a stack of stones on open ground. It exists where the path
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is not obvious — above the treeline, across moorland, over bare rock —
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and it does one job: tell you that someone came this way before, and that
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this is the way. No cave, no lamp, no sifting. Daylight, an open trail,
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and a marker.
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Three properties of a cairn matter here, and each corresponds to
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something this project actually does rather than something it merely
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claims:
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- **It is left by whoever went first, for whoever comes next.** That is
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the runbook culture: every phase carries a document recording what was
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actually run and what it found, including the parts that failed. The
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value is not the stone, it is that somebody bothered.
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- **Anyone passing can add to it.** A cairn grows by contribution and
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belongs to nobody. AGPLv3 throughout, no commercial-license wall, and
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an egress path that helps your data leave if you want it to.
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- **You can see it from a distance, in daylight.** Nothing about it is a
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dark hole you feel your way along. The query language is legible, the
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AI explains rather than divines, and the plan — including what has not
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been proven — is written down where anyone can read it.
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The contrast is not a slogan and should not be turned into one. It is a
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reason the positioning holds together: an open trail with markers on it is
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a genuinely different proposition to a cave, and to a sieve.
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## What this does not change
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The storage/query split in `/docs/architecture.md`, the licence, the
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agent's distro-agnostic constraint, and the Splunk positioning. Cairn OBS
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is still a destination first. Everything above is what it takes to also
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be the road — and to be honest with anyone who asks why they would run
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both.
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Nor does it change the AI goal, which predates this document and outlasts
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it: plain-English querying stays an option, AI-assisted analysis and
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explanation is where it is going, and both run on a local model by
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default. That is not a phase to be finished and ticked off — it is a
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property the product keeps, and any pipeline feature above that would
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require shipping data to somebody else's model to be useful has answered
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the wrong question.
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