Triaxo Solutions

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AI Solutions

LLM features in your product—with guardrails built in

We integrate generation, classification, and tool-calling into your apps with versioning, budgets, fallbacks, and telemetry your platform team can support.

Start a conversation

Get expert help with OpenAI / LLM Integrations

Tell us about your goals, timeline, and constraints. We respond with a practical next step—not a generic pitch deck.

What we build

OpenAI / LLM Integrations — what we deliver

Explore deliverables, tooling, and how we engage. Select any item for detail.

Technology stack

Behind every intelligent solution lies a powerful technology stack

We implement production-grade AI tooling across automation, models, data, and operations—aligned with your cloud standards and compliance requirements.

n8n
Make
Zapier
Temporal
Airflow
Power Automate
OpenAI
Anthropic
Azure OpenAI
Gemini
LangChain
LangGraph
PyTorch
TensorFlow
scikit-learn
XGBoost
Hugging Face
JAX
pgvector
Pinecone
Weaviate
Snowflake
dbt
Apache Kafka
Kubernetes
MLflow
Amazon SageMaker
Vertex AI
Terraform
GitHub Actions
OpenTelemetry
LangSmith
Weights & Biases
Datadog
Grafana
Phoenix
How we deliver

LLM features in your product—with guardrails built in

We integrate generation, classification, and tool-calling with versioning, budgets, fallbacks, and telemetry your platform team can support long term.

Provider strategy: OpenAI, Azure, Gemini, or private endpoints

Structured outputs, caching, and cost dashboards

Prompt versioning and regression evals

Security review for keys, PII, and retention

AI/ML delivery process from discovery through development and validation to production
Industries

Where embedded LLMs become product advantages

SaaS, fintech, healthcare, and enterprise apps add LLM features when shipping safely matters as much as shipping fast.

Healthcare & Life Sciences

Clinical documentation assist with audit-friendly prompts and de-identification.

Financial Services

Advisor copilots and document summarization with compliance review.

Logistics & Operations

Ops summaries and contract assist with access-controlled retrieval.

SaaS & Tech

AI-native features with per-tenant limits and observability baked in.

Retail & E-commerce

Merchandising copy, search, and support assist with brand guardrails.

Education

Tutoring and content tools grounded in approved curricula.

Public Sector

Policy-aware summarization over internal knowledge bases.

Manufacturing & Industrial

Engineering copilots over specs, logs, and maintenance records.

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AI Solutions

LLM integrations we've shipped in production

Product features across summarization, classification, and tool use—with cost controls and safe rollout patterns.

Coin Keeper — Triaxo project
Coin Keeper
Crypto App — Triaxo project
Crypto App
CryptoWrex — Triaxo project
CryptoWrex
Ecommerce Banking App — Triaxo project
Ecommerce Banking App
Nostradamus Tips — Triaxo project
Nostradamus Tips
Smarter Crypto — Triaxo project
Smarter Crypto
Social Gold App — Triaxo project
Social Gold App
Coin Keeper — Triaxo project
Coin Keeper
Nostradamus Tips — Triaxo project
Nostradamus Tips
Crypto App — Triaxo project
Crypto App
Smarter Crypto — Triaxo project
Smarter Crypto
CryptoWrex — Triaxo project
CryptoWrex
Social Gold App — Triaxo project
Social Gold App
Ecommerce Banking App — Triaxo project
Ecommerce Banking App
Process we follow

How we integrate LLMs without production surprises

Architecture review, thin vertical slice, hardening, and operate—with evals before broad feature flags roll out.

Strategy and discovery for AI use cases
01
Discover & align

Choose models, data flows, and compliance constraints—document threat model and cost envelopes.

Building and evaluating AI models
02
Build & evaluate

Ship a narrow feature slice with golden tests and staging parity to production.

Analytics, evals, and production readiness
03
Harden for production

Add rate limits, fallbacks, caching, and dashboards for latency, cost, and errors.

Launch, handoff, and ongoing support
04
Launch & handoff

Hand off runbooks, prompt ownership, and a roadmap for the next LLM capabilities.

Frequently asked questions

Frequently Asked Questions

Common questions about OpenAI, Azure OpenAI, and Gemini integrations.

Still Have Questions?

We’re here to help you!

Yes. We deploy within your VPC or Azure subscription when policy requires it, including private endpoints and key management patterns.
Caching, model routing, prompt compression, per-tenant budgets, and usage dashboards are standard in our integrations.
Golden datasets, regression evals, and feature flags per prompt version before anything reaches all users.
When retrieval and prompting aren't enough we evaluate fine-tuning—but many product features ship faster with RAG and structured outputs first.
We design fallbacks: alternate models, cached responses where appropriate, and graceful degradation—tested in staging before production.
Insights

From our engineering team

Practical notes on architecture, delivery, and shipping software your team can operate—not generic consulting filler.

Production RAG: run evals before you ship to customers
Triaxo AI Engineering
AI / ML
March 12, 2026
Production RAG: run evals before you ship to customers

Retrieval quality, citation coverage, and regression suites matter more than model choice. Here is the eval ladder we use before any copilot touches production traffic.

Designing APIs that survive real-world load
Triaxo Platform Engineering
Architecture
February 18, 2026
Designing APIs that survive real-world load

Versioning, idempotency, pagination contracts, and error shapes that keep mobile, partner, and batch clients stable when traffic spikes.

Why CI/CD pays off before you think you need it
Triaxo DevOps Practice
DevOps
February 4, 2026
Why CI/CD pays off before you think you need it

Teams delay pipelines until pain is acute. A thin CI/CD spine early reduces rework, makes security reviewable, and keeps MVPs shippable without heroics.