--- track: runtime-v2 iteration: "9" status: done readiness: ready review_pending: "forks auto-approved 2026-09-08/09 for autonomous execution — developer second review before this ships. COMPLETE BOTH DIRECTIONS, live-gated (just tls 5/0 outbound, just tls-server 4/0 inbound EC+RSA). Outbound: A–E crypto, F1–F3c client (net.connect_tls/read_tls/write_tls, ids 115-117). Inbound: G1 constant-time RSA-PSS + ECDSA-P256 signing (RFC 6979), G2 server FSM, G3 net.accept_tls (id 118) + private-key parse. Deferred (named follow-ups, not blockers): park-based handshake, TlsConn language object, connection pooling, TLS close_notify on shutdown, complete-formula EC ladder. Doctrine docs (34/38/porch) corrected as part of this landing" --- # runtime-v2 9 — in-process TLS: retiring the proxy-termination doctrine > Created 2026-09-07 from the gap [`jarvis`](../jarvis/00-story.md) surfaces — an > assistant must dial an LLM over HTTPS, and the runtime has no outbound TLS. The > developer chose the **full overturn**: the runtime gains TLS **both > directions**, and the standing "TLS is the proxy's job" doctrine is retired. > **Brainstormed to `ready` 2026-09-07**: hand-rolled TLS 1.3, RSA+ECDSA+X.509 > cert verification, decomposed into the bottom-up phase ladder below. The load- > bearing implementation fork is settled — hand-roll, not vendor — with eyes open > to the risk (Info). ## Why this exists — and what it overturns Three documents record the same standing decision, and this story reverses it: - *"TLS — permanently the proxy's job (framework doctrine)"* — [language 34](../language-runtime-database/34-crypto-builtins.md) (crypto builtins, line ~83). - *"TLS — proxy-terminated, by doctrine, unchanged… the story says so out loud rather than implying HTTPS clients"* — [language 38](../language-runtime-database/38-content-platform-capabilities.md) (which adds `net.connect` as **plaintext** outbound TCP and explicitly refuses HTTPS). - *"TLS, HTTP/2 | nobody — proxy-terminated by doctrine"* — [porch](../porch/00-story.md)'s "what this track does NOT own". The doctrine was reasonable while nothing in-tree needed to *dial* anything: a front proxy terminates inbound TLS, and there were no outbound callers. jarvis breaks that — its whole job is to reach a remote API — and the developer's direct-HTTPS choice for it means the runtime, not a companion, owns the connection. Rather than carve out a one-directional exception, the decision is to give the runtime TLS in **both** directions: outbound so a `.wo` program can dial HTTPS, and inbound so porch can terminate TLS itself instead of mandating a proxy in front of every deployment. This is **not a builtin-sized seam** like the rest of this track. TLS 1.3 plus X.509 certificate validation is a large, security-critical subsystem — the one place the runtime's hand-roll-everything habit (the sha256 precedent) should not be assumed to extend. That tension is the load-bearing fork below. ## Decisions locked (brainstorm 2026-09-07) 1. **Hand-roll TLS 1.3 in C — no vendored library.** The developer chose the hand-roll over vendoring mbedTLS/BearSSL, extending the runtime's hand-roll-everything habit (the sha256 precedent) to the hardest place it has reached. This keeps the pure single-static-binary, zero-external-dependency story intact — and it is, stated plainly, the largest and highest-risk undertaking in the project. See the risk note in Info; it is not a caveat to bury. 2. **TLS 1.3 only.** No 1.2 legacy — smallest attack surface, one handshake to get right. 3. **Cert verification is full: RSA + ECDSA + X.509.** To reach real endpoints (Anthropic, OpenAI and most HTTPS servers present RSA-signed chains), the verifier does RSA-PSS and RSA-PKCS#1v1.5 plus ECDSA-P256, over a real ASN.1/DER + X.509 chain validator with a system trust store, validity-date and hostname (SAN) checks. This is the biggest, most CVE-prone slice, and it is in scope because EC-only cannot talk to the APIs jarvis needs. 4. **Bottom-up, outbound-first.** Build the primitives before the protocol, and the client (jarvis's need) before the server (porch's), because the primitives are shared and only the role differs. ## The phase ladder Each rung is a security-critical slice; C, D and E are each large enough that they may split into their own runtime-v2 iterations as they are picked up. | Phase | Delivers | Notes | | --- | --- | --- | | A — AEAD | AES-128/256-GCM (TLS 1.3 mandates AES-128-GCM) and ChaCha20-Poly1305 | **is runtime-v2 [8](08-symmetric-cipher.md)** — so 8 must include AES-GCM, not only ChaCha; this rung consumes it | | B — key schedule | ✅ **LANDED 2026-09-08** — `wo_hkdf_sha256_extract`/`expand` (RFC 5869) + `expand_label` (RFC 8446 §7.1), internal C over `hmac_sha256`; SHA-256 (the mandatory suites' hash; SHA-384 a later add). KAT-gated in `test_crypto.c` (RFC 5869 case 1 + Expand-Label vectors), ASan/UBSan clean. No builtin, no compiler change | | C — key exchange | ✅ **LANDED 2026-09-08** — `wo_x25519` (RFC 7748), constant-time Montgomery ladder + mask-based cswap, radix-2⁵¹ field arithmetic (curve25519-donna-c64, `__int128`). Internal C. KAT-gated in `test_crypto.c`: RFC 7748 §5.2 both direct vectors **and the 1000-iteration test**, ASan/UBSan clean | | D — signatures | ✅ **LANDED 2026-09-08** — **RSA** `wo_rsa_pkcs1_sha256_verify` + `wo_rsa_pss_sha256_verify` (bignum Montgomery modexp) and **ECDSA-P256** `wo_ecdsa_p256_sha256_verify` (Jacobian point arithmetic, a=-3, on-curve check, Fermat inverses reusing the bignum). Verification is public data so **not** constant-time by design. Both match python vectors (RSA-2048 PKCS1+PSS; P-256), tamper/wrong-hash rejected, KAT-gated, ASan/UBSan clean | | E — X.509 | 🔄 **CORE LANDED 2026-09-08** — a defensive ASN.1/DER reader (every length/bound checked, malformation is rejection not over-read) + certificate parse (tbsCertificate span, sig-alg OID, signature, SubjectPublicKeyInfo→RSA n/e or EC P-256 x/y, validity) + `wo_x509_verify_one` (one chain link's signature, dispatching to D's RSA-PKCS1/PSS + ECDSA-P256) + `wo_x509_parse_spki` + `wo_x509_check_validity` (caller supplies the time). KAT-gated in `test_crypto.c` against **real python-generated chains** — RSA CA+leaf (SHA256withRSA) and EC P-256 CA+leaf (ecdsa-with-SHA256): leaf-vs-CA, self-signed CA, wrong-issuer/tampered/truncated rejected, validity window, SPKI extraction — ASan/UBSan clean. **Deferred to F**: SAN/hostname match (needs the target host) and the multi-cert chain walk to a system CA bundle | notoriously bug-prone; consumes D | | F — record + handshake (client) | ✅ **COMPLETE 2026-09-08/09** (client). F1–F3b LANDED 2026-09-08 — new `tls.c`/`tls.h`. **F1 record layer** (`wo_tls_record_seal`/`open`, RFC 8446 §5.2, per-record nonce = iv XOR seq, both suites) KAT'd byte-for-byte vs python. **F2 key schedule** (`wo_tls_derive_handshake`/`_application`/`_traffic_keys`/`_finished_verify`, §7.1) KAT'd byte-for-byte vs **RFC 8448 §3**. **F3a message layer** (`wo_tls_parse_server_hello` — attacker input, bounded, rejects HRR/bad suite/truncation; `wo_tls_build_client_hello` — SNI, x25519, sig-algs) KAT'd vs RFC 8448 SH + validated by an independent parser. **F3b offline handshake verification** (`wo_tls_verify_cert_verify` over phase E+D; server + client Finished) — the whole handshake **crypto** proven end-to-end offline vs RFC 8448. **F3c-core sans-io driver** (`wo_tls_client` — pure FSM, caller frames records: CH→SH→flight→Finished, message reassembly, per-message transcript timing, constant-time Finished, application encrypt/decrypt) KAT'd against the **full RFC 8448 record trace** — client Finished + first app record byte-for-byte, NewSessionTicket + server app data decrypt, tampered flight refused. **SAN/hostname** (`wo_x509_check_host`, RFC 6125) + driver enforcement landed. **F3c-net chain validation** (`wo_tls_verify_chain`) + **basicConstraints/EKU** hardening KAT'd offline. **F3c-net socket/VM ✅ LANDED 2026-09-09**: `getrandom` ephemeral, per-shard lazy CA-bundle loader (`WO_CA_BUNDLE`), and the `net.connect_tls` / `net.read_tls` / `net.write_tls` builtins (ids 115–117; blocking deadline-bounded connect+handshake then a parked data plane; per-shard fd-keyed slot table, no locks). **Live-gated** (`just tls`, 5/0) from `.wo` against a local TLS 1.3 stub incl. untrusted-chain + hostname-mismatch negatives. Client side complete | jarvis's path; the reason the story exists | | G — server (inbound) | ✅ **COMPLETE 2026-09-09** — the server handshake FSM (loopback-KAT'd), constant-time RSA-PSS + ECDSA-P256 **signing** (RFC 6979), private-key parse, `net.accept_tls` (id 118); live-gated by `openssl s_client` (EC + RSA), `just tls-server` 4/0 | retires the inbound proxy requirement; doctrine docs corrected | ## F3c-net — the socket/VM slice (✅ **LANDED 2026-09-09**; decisions locked, forks auto-approved, `review_pending`) > **Landed and live-gated.** `net.connect_tls` / `net.read_tls` / `net.write_tls` > (ids 115–117) are wired into the VM and dial a real TLS 1.3 server end to end > from `.wo`: the hand-rolled handshake, the chain + hostname + basicConstraints/ > EKU validation against the system (or `WO_CA_BUNDLE`) trust store, and an > application round-trip. The `just tls` gate (`scripts/tls-accept.sh`, > `docs/examples/tls-client`) proves the happy path against a local TLS 1.3 stub > and refuses the untrusted-chain and hostname-mismatch negatives — 5 checks, 0 > failures, no live network. All six decisions below were implemented as locked. > **This completes the outbound client; jarvis is unblocked.** Everything security-critical is landed and offline-KAT'd. What is left is I/O integration that can only be gated **live** (a local `openssl s_server` / python TLS server), so it is one cohesive slice, not further split. The integration forks are settled below — the first four grounded in the existing runtime, the last two added 2026-09-09 from a comparison against **gofiber v3's client** (fasthttp + Go `crypto/tls`/`crypto/x509`, in `.dev/reference/fiber`), which bounds every request with a timeout and delegates full chain checks to `crypto/x509`. This section is `ready`: the decisions are locked, the acceptance criteria are stated, and code may start once a developer signs off the `review_pending` marker. ### The locked decisions 1. **Blocking connect + blocking handshake, then park the data plane.** This mirrors `net.connect` exactly (`sysio.c` `WO_B_NET_CONNECT`): the socket is **blocking** through TCP connect and the whole TLS handshake, then switched to `O_NONBLOCK` once ESTABLISHED. `net.connect`'s own comment already accepts a blocking connect ("can stall the shard during the handshake, tolerable while connect is rare"); a TLS connection is likewise rare and long-lived (jarvis streams a whole conversation over one), so the extra few handshake round-trips are the same tolerable stall. Application I/O then **parks the fiber** exactly like `net.read`/`net.write` (`O_NONBLOCK` + `park_fd` on POLLIN/POLLOUT + retry). A **park-based handshake** is a named follow-up — the same deferral `net.connect` made for its `_dl`/park variant, not a v1 requirement. 2. **Per-shard fd-keyed slot table, no locks.** TLS connection state lives in a `wo_tls_conn` slot array **in the shard's own vm**, keyed by fd — the exact pattern of `wo_child children[WO_PROC_MAX]` (`vm.h`: "live in the owning shard's vm — no locks, one thread"). One pinned OS thread per shard and fds that never migrate cross-shard make this thread-safe by construction, with no new locking. Each slot holds the `wo_tls_client` (keys, seqs, driver state), a **partial-record read buffer** (a record may arrive in fragments over a non-blocking socket), and a **leftover-plaintext buffer** (a decrypted record larger than the caller's `max`). Capped like `WO_PROC_MAX`. 3. **Failures trap `WO_T_IO`, loudly.** Every failure of a secure connect — DNS, TCP connect, the handshake, and critically the **certificate chain and hostname** checks (and any later record auth failure) — returns a `WO_T_IO` trap with a descriptive message, mirroring `net.connect`. A secure-connection failure is never a silent `nil`; this is the "refuse loudly / no partial trust" rule made concrete. `net.read_tls`/`net.write_tls` otherwise mirror `net.read`/`net.write` (EOF is the empty Bytes; a partial write resumes via a `park_wr_at`-style cursor; a decrypt/auth failure traps). 4. **Per-shard, lazy, read-only CA bundle.** On the first `net.connect_tls` a shard loads the system PEM bundle into its own vm (read-only thereafter) and reuses it for every later dial — no cross-shard sharing, no locks, consistent with (2). Path: `/etc/ssl/certs/ca-certificates.crt` (confirmed present on the dev box), overridable by the `WO_CA_BUNDLE` environment variable — which is also how the live gate points the client at its self-signed test CA. 5. **A bounded handshake deadline (no unbounded shard stall).** The blocking model of decision (1) would otherwise let a slow or hostile server stall the shard's one thread indefinitely during connect + handshake — the DoS that gofiber closes with `DoTimeout`. So `net.connect_tls` bounds the whole connect+handshake by a deadline: **non-blocking `connect()` + `poll` for the TCP step, and `SO_RCVTIMEO`/`SO_SNDTIMEO` on the blocking socket across the handshake**, capping the stall without needing the full park refit. Default from `WO_TLS_HANDSHAKE_MS` (10 000 ms if unset); expiry aborts and traps `WO_T_IO` ("tls: handshake timeout"). A per-call `_dl` variant and the park-based handshake remain the named follow-ups. 6. **Chain hardening: basicConstraints + EKU (not just signatures).** Signature + validity + SAN is not enough — Go's `crypto/x509` also enforces the constraints that stop a leaf from masquerading as a CA. So the phase-E extension walk and `wo_tls_verify_chain` gain: every **non-leaf** cert must assert `basicConstraints` CA:TRUE and satisfy `pathLenConstraint`, and the **leaf** must carry Extended Key Usage `id-kp-serverAuth` (or omit EKU entirely). A `keyUsage` `keyCertSign` check on issuers is included where present. Failure is a rejection like any other chain fault (no partial trust). ### The builtin surface Three new builtins on the `net` module (one numeric id space; `WO_B_MAX` moves 114 → 117): - `net.connect_tls(host, port) -> Int` — id **115**, arity 2. Blocking TCP connect (reusing the `net.connect` DNS/connect path), `getrandom(2)` ephemeral X25519 key + ClientHello random/session-id, run the sans-io driver over the blocking socket (frame each record: read the 5-byte header, then the body; flush `take_output`) to ESTABLISHED, set the host on the driver so the leaf SAN is enforced, then `wo_tls_verify_chain` against the lazily-loaded anchors (with the decision-6 basicConstraints/EKU checks). The whole connect+handshake is bounded by the decision-5 deadline. Returns the fd (a slot is claimed for it); traps on any failure. - `net.read_tls(fd, max) -> Bytes` — id **116**, arity 2. Reads/decrypts one application record via the slot, returning up to `max` plaintext bytes (EOF is the empty Bytes), buffering a partial record and parking on POLLIN, and draining any leftover plaintext first. - `net.write_tls(fd, bytes) -> Int` — id **117**, arity 2. Seals `bytes` into an application record and writes it, parking on POLLOUT for a partial write. `net.close` (existing) additionally frees any `wo_tls_conn` slot for the fd. VM wiring touches `wob.h` (ids + `WO_B_MAX`), `emit.ml`/`types.ml` (registration + return types), `loader.c` (arities), `builtin.c` (sysio dispatch range), and `sysio.c` (the implementations + the slot/bundle helpers). No `.wob` consumer change beyond the id additions. ### Acceptance criteria - **Given** a reachable TLS 1.3 server with a chain to a trusted anchor, **when** a `.wo` program calls `net.connect_tls` for its hostname, **then** the handshake completes, the chain + hostname validate, and an fd is returned. - **Given** that fd, **when** the program `net.write_tls`es a request and `net.read_tls`es, **then** it exchanges application data, and `net.close` frees the socket and the slot. - **Given** a server whose certificate does not chain to a trusted anchor, whose SAN does not match the host, or is expired, **when** `net.connect_tls` runs, **then** it traps `WO_T_IO` — no connection is returned. - **Given** a server that accepts the TCP connection but then stalls (never finishing the handshake), **when** the decision-5 deadline elapses, **then** `net.connect_tls` aborts and traps `WO_T_IO` rather than stalling the shard indefinitely — proven with a stub that connects then sleeps. - **Given** a chain whose issuer lacks `basicConstraints` CA:TRUE (a leaf used to sign another cert), or a leaf lacking EKU `serverAuth`, **when** `net.connect_tls` validates it, **then** it is rejected — with negative KATs in `test_tls` alongside the existing chain cases. - **Given** two shards each dialing TLS, **when** they run concurrently, **then** neither reads the other's slot or bundle (per-shard, no locks), proven under ASan/TSan. - **Given** the live gate, **when** it runs, **then** it dials a local TLS server (trusting a test CA via `WO_CA_BUNDLE`), does a request/response round-trip, and refuses each negative (wrong host, untrusted chain, expired). ### Out of scope (named, deferred) - **A park-based handshake** — the async refit of decision (1); a first-class `TlsConn` language object over the fd — both later, only if measured need or the developer prefers them. - **The HTTP layer.** `net.connect_tls` is a TLS byte pipe; HTTP/1.1 framing over it is the caller's (jarvis 1's `.wo`), not this slice's. - **Inbound TLS (server).** Phase **G**, a separate slice for porch. ## G — inbound TLS server (READY — decisions locked 2026-09-09; forks auto-approved, `review_pending`) The last rung: porch terminates TLS itself instead of mandating a front proxy, retiring the "TLS is the proxy's job" doctrine on the inbound side too. Much is reused — the record layer, the (role-symmetric) key schedule, X.509 and the per-shard slot table are all direction-agnostic — but the server introduces the one thing the client never needed: **private-key operations**, which unlike the verifiers touch secret data and so must be **constant-time**. That, plus a server-side handshake FSM and a cert/key loading surface, is the whole of G. It is large and security-critical; it may split into its own runtime-v2 iteration when picked up. ### What is reused vs new - **Reused as-is:** the record layer (symmetric), `wo_tls_derive_handshake`/ `_application` (the server just reads with the *client* traffic keys and writes with the *server* ones — the roles swap, the schedule does not), X.509 (only to ship the cert; the server does not validate a chain unless mTLS, which is out of scope), and the `wo_tls_conn` slot table + `net.read_tls`/`net.write_tls` data plane. - **New:** a server handshake FSM, constant-time signing, private-key parsing, and the accept surface — below. ### The locked decisions 1. **Constant-time private-key ops (non-negotiable).** The built RSA modexp and EC scalar-mult are verify-only over public data and are *not* constant-time (stated so in `crypto.c`). Signing touches the secret key, so G adds a **constant-time fixed-window modexp** for the RSA private exponent and a **constant-time Montgomery-ladder scalar multiply** for EC — verified, not assumed. This is the load-bearing security requirement of the whole rung. 2. **Both server key types.** RSA (**RSA-PSS** signing, TLS 1.3's scheme) and **ECDSA-P256**, because real server certs (porch's, Let's Encrypt) are either. RSA-PSS reuses the bignum; ECDSA reuses the P-256 point arithmetic — each with the new constant-time cores. 3. **Deterministic ECDSA nonce (RFC 6979).** The signing nonce is derived by HMAC-DRBG from the key and message, not drawn from an RNG — no catastrophic nonce-reuse or bias risk, and it is KAT-able against RFC 6979 vectors. (The ephemeral X25519 key is still random via `getrandom`.) 4. **The accept surface.** `net.accept_tls(listener, certfile, keyfile) -> Int`: accept a TCP connection on the listener, run the server handshake presenting the loaded identity, and return a TLS conn fd that `net.read_tls`/`write_tls`/ `net.close` already handle. The parsed cert chain + private key are cached per path in the shard (lazy, read-only), like the CA bundle. `net.listen` is unchanged. Handshake blocking + deadline-bounded, data plane parked — exactly the client's model (decisions 1/5 of §F3c-net). 5. **Full 1-RTT, server-auth only.** A client offering x25519 + a supported suite gets a complete handshake. No client certificates (mTLS), no session resumption / PSK / 0-RTT, no HelloRetryRequest (a ClientHello without an x25519 key_share is refused, not renegotiated). 6. **Sans-io server FSM.** `wo_tls_server`, symmetric to the client driver, so the security-critical state machine is testable without sockets. ### The sub-phases - **G1 — signing + key parsing.** 🔄 **signing LANDED 2026-09-09** — constant-time **RSA-PSS sign** (`wo_rsa_pss_sha256_sign`, `bn_modexp_ct`) and **ECDSA-P256 sign** (`wo_ecdsa_p256_sha256_sign`, RFC 6979 nonce, `jmul_ct`), KAT'd byte-for-byte (RSA vs a python from-spec oracle with a fixed salt; ECDSA vs the RFC 6979 A.2.5 vectors) + sign→verify round-trip, ASan/UBSan clean. **Remaining G1c**: private-key PEM/DER parsing (PKCS#8, PKCS#1, SEC1) — lands with G3, which is what reads key files (the FSM takes raw key material). - **G2 — the server handshake FSM.** ✅ **LANDED 2026-09-09** — `wo_tls_server` (sans-io): parse ClientHello (pick suite, x25519 share, echo session id; reject no-x25519/no-1.3), build ServerHello, derive the role-symmetric keys, emit the encrypted flight (EncryptedExtensions + Certificate + a signed CertificateVerify + Finished), verify the client Finished, switch to application keys. Signs with the G1 primitives (RSA-PSS or ECDSA + a DER SEQ{r,s} encoder). **KAT by loopback** — our client driver against our server driver, EC then RSA server identity, ESTABLISHED with an app round-trip both ways. test_tls 123, ASan clean. - **G3 — `net.accept_tls` + the live gate.** ✅ **LANDED 2026-09-09** — the VM builtin (id 118, `WO_B_MAX`→118), private-key PEM/DER parse (`wo_pkey_parse`, PKCS#8/PKCS#1/SEC1), the per-shard identity cache, and the `wo_tls_conn` refactor (negotiated app keys, not an embedded driver — read/write serve both directions). **Live-gated** `just tls-server` (`docs/examples/tls-server`): **`openssl s_client` validates our hand-rolled server (EC + RSA certs) and gets the reply — 4/0**, and the outbound `just tls` stays 5/0. Interop fix: the server loops past the client's change_cipher_spec, and `net.close` drains a TLS conn before FIN so the reply is never lost to an RST. ### Acceptance criteria - **Given** a loaded RSA (or ECDSA-P256) identity, **when** a TLS 1.3 client connects, **then** the handshake completes and application data flows both ways. - **Given** the loopback gate, **when** our client and server drivers run against each other, **then** they agree on the traffic keys and round-trip app data. - **Given** `openssl s_client` against `net.accept_tls`, **when** it connects, **then** it validates our certificate and completes the handshake (both key types). - **Given** a signing path, **when** exercised, **then** it is constant-time (no secret-dependent branch or index — reviewed and tested), and RFC 6979 nonces match the published vectors. - **Given** a ClientHello without an x25519 key_share, **when** received, **then** the connection is refused (no HRR). ### Out of scope - **mTLS / client certificates**, **session resumption / PSK / 0-RTT**, and **HelloRetryRequest** — each a later slice if a consumer asks. - **Correcting the doctrine docs** (language 34/38, porch) — the bookkeeping pass when G lands, named so it is not forgotten. ## Consumers Named, so this is not a capability shipped as decoration: - **[jarvis 1](../jarvis/00-story.md)** — outbound HTTPS to the LLM API (the reason this story exists). - **porch** — inbound TLS termination, retiring the mandatory front proxy for a single-binary deployment. - **language 38** — the outbound HTTPS half it excluded by doctrine; this story is where that exclusion is lifted. ## Dependencies - **runtime-v2 [8](08-symmetric-cipher.md)** — the AEAD (phase A). This story forces 8 to include **AES-GCM** (TLS 1.3 mandates AES-128-GCM), not ChaCha alone — a consequence to record in 8's own fork. - **language [34](../language-runtime-database/34-crypto-builtins.md)** — SHA-256/HMAC for the key schedule (phase B) and the transcript hash. - **`net.connect`** (id 110, **landed 2026-09-07**) — the outbound TCP socket the client handshake runs over; the client half sits directly on it. ## Out of scope - **HTTP/2.** A separate protocol concern, parked behind language iteration 23 regardless; TLS is its prerequisite, not its owner. - **Mutual TLS / client certificates.** A later slice if a consumer asks; the first cut authenticates the server, not the client. - **Updating the doctrine documents.** Retiring "TLS is the proxy's job" means correcting [language 34](../language-runtime-database/34-crypto-builtins.md), [language 38](../language-runtime-database/38-content-platform-capabilities.md) and [porch](../porch/00-story.md) when this lands — a follow-up bookkeeping pass, named here so it is not forgotten, not part of the runtime work. ## Risk and test strategy **This is the highest-risk work in the project, and hand-rolling it raises that risk, not lowers it.** Hand-rolled RSA, ECDSA, X25519 and ASN.1/X.509 are the classic sources of real-world CVEs (timing side-channels, padding oracles, chain- validation bypasses, parser memory bugs). The decision to hand-roll is recorded and owned; the mitigations are non-negotiable: - **Constant-time** for every secret-dependent operation (X25519, RSA/ECDSA, AEAD) — verified, not assumed. - **Reference-tested**: every phase gated against a reference implementation — `openssl s_client`/`s_server`, real published cert chains, and the RFC 8448 TLS 1.3 test vectors — plus an ASan/UBSan leg on the parser and bignum code. - **Negative tests as first-class**: an expired cert, a wrong hostname, a broken chain, a tampered CertificateVerify and a downgrade attempt must each be refused, with a test that fails if they are accepted. - **No partial-trust states**: a validation that cannot complete refuses the connection; there is no "warn and continue". ## Info This is the heaviest iteration in the runtime-v2 track by a wide margin — a subsystem, not a builtin-sized seam — and the only one that reverses a project doctrine. It is pure I/O-plane and compute work (a handshake layer over the existing socket verbs plus the crypto ladder); no actors, so it is not exposed to the lang-41 hang. It gates jarvis entirely: until at least phases A–F land, jarvis cannot reach a model at all. Realistically it is a multi-phase effort measured in weeks, and phases C (X25519), D (signatures/RSA) and E (X.509) may each become their own iteration when picked up. Implementation order is the ladder, bottom-up: A (via rv2 8) → B → C → D → E → F, with G (inbound server) last.