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לפני 19 שעות
חברה חסויה
Location: Bnei Brak
Job Type: Full Time
we are looking for a Principal Architect.
You own the end-to-end architecture of the agentic platform: how speech, avatar generation, and the agentic reasoning layer combine into one coherent system that holds up in production, across many tenants, under a real-time latency budget.
This is the widest technical seat in the group. A single user turn crosses speech recognition, retrieval, planning and tool calling, speech synthesis, and avatar rendering, and the experience is only as good as the seams between them. The scope here is the whole path, including the parts we did not build ourselves: externally sourced capabilities, third-party model providers, and customer-owned systems reached through the gateway.
Some of the decisions here shape the platform for a long time: how the speech pipeline is composed, which real-time orchestration and transport framework the platform standardizes on, how new capabilities are absorbed into the target architecture, and where a shared component belongs versus a per-customer one. You define the criteria these decisions are judged against and work closely with the research team that benchmarks the options, so the call rests on evidence. You write the reasoning down, and you stay close enough to the code to know when reality disagrees with the design.
You are hands-on. You prototype to de-risk, you read the traces yourself, and you stay as close to the numbers as to the diagram.
Requirements:
B.Sc. in Computer Science (or equivalent technical field), mandatory.
12+ years of industry experience, including 5+ years as a principal, staff, or lead architect owning system-level design for a production platform.
Proven track record architecting distributed, multi-tenant production systems at scale, with real accountability for latency, cost, and reliability.
Strong cloud experience, designing and running production systems on a major cloud platform.
Deep hands-on experience with agentic systems and LLMs, including orchestration, tool calling, interoperability standards such as MCP, retrieval, and how these systems fail in production.
Real-time systems experience: streaming transport, latency budgeting, and graceful degradation under load.
Strong Python skills. You still write code and read other peoples code closely.
Hands-on experience with evaluation, tracing, and observability for AI systems, and using what they show to drive architectural change.
Strongly Preferred:
Experience at a SaaS company.
Experience with speech technologies: ASR, TTS, or speech-to-speech, including streaming architectures.
Experience with generative video, avatar generation, or diffusion and flow-matching model families.
Experience with real-time media frameworks.
Experience with enterprise governance and compliance requirements.
Experience with multilingual systems.
M.Sc. or Ph.D. in Computer Science, Machine Learning, or a related field.
This position is open to all candidates.
 
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לפני 20 שעות
Location: Bnei Brak
Job Type: Full Time
we are looking for a Senior AI Engineer - Exploration & Prototyping.
That is this role. You take an open question, run a focused spike, and come back with numbers and a recommendation. You read the source of the frameworks you evaluate rather than trusting their marketing. You build prototypes to settle arguments.
You do not own a subsystem and you do not ship to customers, which is exactly what protects the work: exploration inside a delivery team always loses to the sprint. You sit alongside the platform, research, and forward-deployed teams, you borrow their context freely, and your output is evidence they can act on.
You will be trusted with real influence early. The recommendations you write become the architecture other people build against, so the bar is not a working demo but a defensible conclusion, including the ones that say no.
What Youll Do:
Run technical spikes that close open decisions, covering agent orchestration frameworks, real-time transport, memory protocols, agent interoperability standards, LLM selection and routing, evaluation harnesses, and the production library and stack choices underneath all of it.
Build prototypes to de-risk, standing up something real quickly, proving or disproving the thing in question, and moving on without becoming attached to the code.
Read and evaluate unfamiliar codebases, going into the source of a candidate framework to find out whether it can actually support what we need rather than what its documentation implies.
Design the measurements that make a decision defensible, building the harness, running the comparison, and reporting latency, cost, and failure behavior honestly.
Own build-versus-adopt recommendations for platform infrastructure, frameworks, and libraries, including a clear statement of what it would cost to be wrong.
Write the recommendation down. Every spike ends in a short, decisive document another engineer can act on, with the evidence, the rejected options, and the reasoning behind the call
Hand off cleanly, transferring what you learned to the team that will own the capability in production, and staying available while they pick it up.
Track the landscape across agentic infrastructure, real-time frameworks, and adjacent AI tooling, and bring forward the things that genuinely change what we can build.
Requirements:
B.Sc. in Computer Science (or equivalent technical field), mandatory.
7+ years of industry experience in software, ML, or research engineering roles, with real ownership of production systems.
Genuine technical breadth. You have worked across backend services, runtime, and infrastructure, and you are comfortable close to ML systems without needing to own the models. You can hold several unfamiliar domains at once.
Strong Python skills, and the ability to get something real running quickly.
A track record of technical evaluations that led to decisions, where you compared real options, produced evidence, and the organization acted on the result.
Evidence over intuition. You have designed benchmarks or measuremet harnesses, and you can describe a time you were convinced something would work and the numbers said otherwise.
Experience with real-time, streaming, or latency-sensitive systems.
Hands-on experience with LLMs and agentic systems, including orchestration, tool calling, and how these systems behave and fail in production.
Comfortable working as an individual contributor without a team, self-directed, and able to finish. Exploration that never lands is the failure mode of this role.
Experience in a fast-moving SaaS company and in cloud environments (AWS, GCP, or Azure).
This position is open to all candidates.
 
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לפני 19 שעות
חברה חסויה
Location: Bnei Brak
Job Type: Full Time
we are looking for an AI Tech Lead to join our M&T engineering organization - the team behind a live, high-availability TV platform serving telecom and media companies worldwide at 99.995% SLA on AWS.
Were not looking for someone who talks about AI strategy. Were looking for someone who picks up a real problem, finds where AI creates a step-change, and makes it happen.
This is an individual contributor role reporting directly to the VP R&D. Youll be embedded in M&T but will work closely with engineering teams across R&D - contributing your AI expertise to shared initiatives, building collaborative relationships, and helping move technical work forward together.
If youre the kind of engineer who gets restless when theres a better way and no one is building it yet - this role is for you.
Requirements:
7+ years of software engineering experience, with at least 3 years focused on AI/ML in production environments
Hands-on experience with both Dev (backend services, APIs, microservices) and DevOps (CI/CD, infrastructure, observability, cloud operations)
Proven experience building or integrating AI/ML solutions in cloud-native, distributed systems (AWS preferred)
Strong understanding of observability concepts: metrics, logs, traces, alerting, anomaly detection T
Experience driving technical initiatives across multiple teams without direct authority
Excellent communication skills - ability to translate complex AI concepts for non-AI engineers and push for outcomes in a multi-stakeholder environment
This position is open to all candidates.
 
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