We combine scientific discipline with years of hands-on product development to create solutions that make a measurable impact.
Turn AI
into ROI
Smartificial is an engineering-driven AI team that builds systems around how your business actually operates.
We design AI systems for teams that work with voice, text and data at scale.
We help companies design, build and evolve AI systems — whether that means creating something from scratch, integrating proven solutions or strengthening an existing product.
What we do
Custom AI Systems
We design and build custom AI systems that integrate into how your business actually works.
We build custom AI systems when a ready-made solution doesn’t fit — or when using one would create more problems than it solves. This is usually the case when data is messy, workflows are specific, and the system has to live in production for years.

We design the full setup: how data flows, how models interact with existing systems, how decisions are made and how results are validated.

Sometimes this involves LLMs, sometimes classical ML, sometimes no AI at all in parts of the system. The goal is always the same — a solution that actually works inside your product and operations.
Generative AI & NLP
We work with language where it matters: search, analysis, internal tools, and customer-facing systems. Not as a chatbot layer, but as a way to make complex systems easier to use.
In practice, this often means building retrieval-augmented systems that connect language models to real data — documents, databases, internal knowledge. In more complex cases, we design agentic systems that can reason step by step, call tools and APIs, and stay within clear boundaries. Every system is tested for accuracy, stability and predictable behaviour, not just fluency.
Analytical & Forecasting AI
Some problems don’t need generation; they need structure. We build analytical systems that help teams understand what is happening in their data and what is likely to happen next.
This includes forecasting, classification, ranking and anomaly detection. We focus on models that are understandable, testable and usable in real decision-making. If a model can’t be explained or trusted, it doesn’t belong in production — especially when money, risk or operations are involved.
Voice AI & Speech Intelligence
Calls carry more information than words alone. We build systems that work with voice as a signal, capturing tone, emotion and conversational dynamics in real time.
Technically, this involves speech-to-text pipelines, acoustic feature analysis and sentiment models that operate on audio itself, not just transcribed text. These systems are integrated into existing telephony and CRM setups and designed to handle high volumes without becoming fragile or expensive to run.
Data Engineering & AI Infrastructure
Most AI problems are data problems first. We build the infrastructure that makes AI systems reliable: pipelines that move data, clean it, validate it and make it usable.
This includes ETL pipelines, scalable APIs for ML systems, and automated data collection where needed. We design infrastructure with observability and long-term maintenance in mind — because AI systems don’t fail loudly, they fail quietly.
Three ways we help you bring AI into production
Across all of these areas, we work in a few clear formats. The difference is not in what we build, but in how we engage — depending on where your product and team are today.
1
Build from scratch
We take responsibility for architecture, model selection, integration and delivery — from early discovery to production deployment.
2
Integrate existing solutions
We help you choose the right tools and adapt them to your data, infrastructure and workflows, reducing time to value without locking you into a single approach.
3
Partner and evolve your product
In this format, we stay close to both the technology and the market — supporting demos, technical positioning and ongoing development as the product grows.
Cases
Examples of what we’ve built
(01)
Applying retrieval-augmented AI to legal guidance
Legal questions are rarely simple, and generic answers are rarely useful
We built a retrieval-augmented AI system that delivers clear, context-aware legal guidance by grounding every response in verified source material, rather than relying on a language model’s general knowledge
Learn More
(02)
Turning complex real estate data into natural language analysis
Real estate data is valuable, but often hard to work with
We've built an agentic AI interface that lets users explore complex analytics through natural language, without navigating dashboards and tables.
Learn More
(03)
Building an agentic system for subjective product discovery
The client was developing an AI-driven product aimed at simplifying product discovery across online marketplaces
The goal was to help users make purchasing decisions without manually browsing listings, comparing specifications or reading dozens of reviews.

The system was designed to operate on top of existing marketplaces, aggregating publicly available data and turning it into clear, actionable recommendations.
Learn More
(04)
Partner's project
Smart Voice Agents
Give the agent a lead list, it will call, qualify, and hand off leads with next steps
Voxonic's Smart Voice Agents qualify leads, follow up on missed opportunities, resolve common requests, and sync everything to your systems
Learn More
(04)
Partner's project
AI VoIP Platform
A smarter voice infrastructure powered by AI
A scalable, cloud-based voice platform with coverage in 190+ countries and local DIDs in 100+. Proven to lift call-answer rates to as high as 96% in customer deployments.
Learn More
Our strength comes from deep technical knowledge and years of building real, production-ready products.
We understand how systems behave under load, how data moves inside an organisation and how to turn that into reliable AI that supports daily operations.
Our expertise
Our Stack
We work across the full AI engineering stack — from large language models to audio processing and enterprise-grade data pipelines.
Voice AI: Audio preprocessing, VAD, spectrograms, emotion and sentiment models, and real-time evaluation flows.

NLP & LLMs: LLMs (OpenAI, LLaMA, Mistral), RAG architectures, fine-tuning, embeddings, vector search (Pinecone, Qdrant, Weaviate), and domain-specific assistants.

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Research-Level Engineering

We are a team of experienced engineers building NLP, voice and data systems for years. Our work is shaped by a strong engineering culture and guided by a scientific approach to AI — from choosing the right architecture to careful testing and evaluation. This combination allows us to deliver systems that work reliably under real-world conditions, not just in controlled environments.
  • Daniil Krasnoproshin
    Data Scientist & AI/ML Engineer
    Daniil’s research mindset shapes how we build AI systems — from careful data preparation and clear hypotheses to structured evaluation and a deep understanding of how models behave in real-world conditions.

    He has extensive experience building NLP and voice systems, RAG-based assistants and full agentic architectures, with a strong focus on reliability, low latency and cost efficiency in production.
  • Ilya Kislenka
    Founder & CTO
    Ilya is the founder of the company with a strong technical background.

    For the past 5 years, he has been working as a CTO, focusing on delivery and technology management — from early pre-sale involvement to overseeing engineering teams, technical quality and the company’s internal IT infrastructure. With over a decade of hands-on development and leadership experience, he brings a structured, detail-oriented approach to building reliable, production-ready systems.
From Prototype to Production
Our background spans more than 10 years of full-cycle software development: backend, frontend, mobile, architecture, and distributed systems.

This foundation allows us to take AI ideas all the way to production — integrate them into existing products, build the surrounding infrastructure and ensure they perform reliably at scale.
We’ve deployed AI into environments with high call volume, dense legal documents, regional market data and operational workflows that can’t afford downtime.

Our team is used to building systems that need to be stable, maintainable and ready for real traffic — not just prototypes.
Our projects move forward step by step, with clear decisions and no surprises.
We approach every project as an engineering task: understanding constraints, decomposing the problem and building AI systems that can be deployed, supported and scaled in production.
How we work
01 —
Initial Call
05 —
Deployment & Support
We map the problem, understand the goal and check technical feasibility. If the task is clear, we prepare a proposal within a few days.
Once the system is live, we monitor performance, adjust where needed and support the team. When your product evolve, we help the AI evolve with it.
02 —
Pre-Cycle (for complex projects)
We run a series of calls with a business analyst. The goal is to fully decompose the product: features, data, workflows, constraints and the role AI needs to play. The analyst then translates everything into a detailed brief for the AI and engineering team.
04 —
Development & Integration
We build the solution end-to-end. The development team integrates the system into the client’s product with minimal disruption.
03 —
Proposal & Planning
We outline the approach, timeline and team setup. If the client is aligned, we move straight into execution.
Most projects begin with a simple conversation. If you have an idea, a bottleneck or a product you want to strengthen with AI, we’re here to explore it with you.

Let’s see what’s possible
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