More on Temu
TI e programação
Senior AI Engineer - vaga remota
More on Temu
LottieFiles
O link leva ao anúncio original. Donator não recebe candidaturas.
Senior AI Engineer - TI e programação, remoto
A empresa LottieFiles está com uma vaga aberta de Senior AI Engineer: nível senior, ou seja, a empresa espera que você tome as decisões. A posição fica na área de TI e programação e é totalmente remota. A empresa não impõe restrição sobre onde o candidato mora, então você pode se candidatar de onde estiver.
A empresa não publicou nenhum valor, isso é acertado na entrevista. O anúncio não impõe condição nenhuma de horário.
Esta vaga passou por uma verificação automática: anúncios que exigem autorização de trabalho estrangeira, patrocínio de visto, uma nacionalidade específica ou residência em um país indicado não entram na lista.
Em resumo
- Empresa
- LottieFiles
- Área
- TI e programação
- Quem pode se candidatar
- De qualquer país do mundo
- Formato de trabalho
- Totalmente remota
- Nível
- Senior
- Tipo de contrato
- Tempo integral
- Publicada
- 18 de setembro de 2026 (há 19 dias)
- Ativa
- até 17 de novembro de 2026
- Fonte
- Himalayas
Novas vagas de TI e programação por e-mail
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Descrição da empresa
About the role We are building AI systems that generate production-quality motion from natural language. The system combines frontier language models, an AI generation harness, and a text-native Motion DSL designed for structured, editable animation. This role spans two connected areas: improving the production generation system used today, and developing specialized models that can generate the Motion DSL directly with higher quality, lower latency, and better cost efficiency. You will work at the intersection of LLM systems, post-training, code generation, compilers, evaluation, data engineering, and motion design. This is a hands-on engineering role with end-to-end ownership and measurable product impact. Key Responsibilities Build and improve production generative systems
* Design and ship improvements across prompt interpretation, model orchestration, routing, retrieval, tool use, structured generation, validation, repair, and visual verification.
* Diagnose recurring failure modes and turn them into durable improvements in prompts, data, system logic, constraints, or evaluation.
* Build compiler-backed feedback loops and deterministic quality gates that prevent invalid or low-quality outputs from reaching users.
* Develop experiments and fixed evaluation batteries that show whether a change genuinely improves output quality.
Train specialized generative models
* Design supervised fine-tuning datasets, training recipes, and post-training experiments for direct Motion DSL generation.
* Explore distillation, preference optimization, synthetic-data generation, reinforcement-learning approaches, and constrained generation where they are the right tools.
* Select checkpoints using robust evaluations across correctness, visual quality, reliability, latency, and cost - not training loss alone.
* Determine whether a model failure is best addressed through data, training, inference, evaluation, or the underlying language/runtime.
Build the data and evaluation foundation
* Turn production generations into high-quality training and evaluation datasets using filtering, provenance, versioning, deduplication, and contamination controls.
* Design train, validation, and evaluation splits that minimize leakage and preserve meaningful generalization tests.
* Create failure taxonomies, hard negatives, regression suites, and representative prompt batteries.
* Combine deterministic checks, model-based judges, render evidence, and human review into a reliable evaluation system.
What we're looking for
* Strong ML and software engineering You have built and operated production AI or machine-learning systems, not only prototypes. You are comfortable moving across model behavior, data pipelines, APIs, infrastructure, evaluation, and product code.
* Hands-on LLM training experience You have practical experience with supervised fine-tuning and modern post-training workflows. You understand how dataset construction affects model behavior and can explain how you prevent leakage, contamination, and misleading evaluation results.
* Strong evaluation instincts You know that generative systems improve only when they can be measured. You can design experiments, regression suites, automated graders, and evaluation datasets that distinguish real gains from noise.
* Experience with structured or code generation Experience with code-generation models, DSLs, grammars, parsers, compilers, structured outputs, constrained decoding, or program synthesis is especially relevant. The generated output is executable structured code, so syntactic and semantic correctness both matter.
* Production engineering judgment You treat observability, reliability, latency, inference cost, caching, failure recovery, and maintainability as part of the ML system itself.
* Product and visual judgment You can distinguish technically valid output from work that feels polished. Experience with animation, motion design, graphics, creative tooling, or multimodal systems is valuable, but not required. Nice to have
* Experience fine-tuning or evaluating code-generation models.
* Experience with multimodal or vision-language models.
* Experience building model-based, human-in-the-loop, or rubric-driven evaluation systems.
* Experience with compilers, interpreters, language tooling, or program analysis.
* Experience with Rust, PyTorch, or distributed training infrastructure.
* Experience with preference optimization, reinforcement learning, or synthetic-data pipelines.
* Experience with animation, graphics, rendering, or creative software.
LottieFiles Perks
* Fully Remote Working Environment
* Flexible Work Hours
* A welcome gift and LottieFiles swag pack
* Bonus to set up your workstation at home
* Unlimited Leave Days
* Medical Insurance
* Generous learning budget
* Gym membership
* Co-working space membership
Please note: To proceed with your application, you must confirm your acknowledgment of this Privacy Policy by ticking the checkbox on the next page. Read our Privacy Policy here: LottieFiles : Privacy Policy Originally posted on Himalayas
O texto permanece no idioma original da empresa, porque é nesse mesmo idioma que você vai se candidatar.
Perguntas frequentes sobre esta vaga
Posso me candidatar à vaga de Senior AI Engineer de onde eu moro?
Sim. Para esta vaga, LottieFiles aceita candidatos de qualquer país do mundo, então você não precisa de autorização de trabalho de outro país. O anúncio passou por uma verificação automática: se a empresa exigisse autorização de trabalho, patrocínio de visto ou residência em um país específico, ele não estaria neste quadro.
Qual é a remuneração informada?
Para esta vaga, LottieFiles não divulgou remuneração. A maioria dos anúncios remotos não publica valor, isso é acertado na entrevista.
Como eu me candidato?
Você se candidata diretamente à empresa, pelo anúncio original publicado em Himalayas. Donator não recebe candidaturas, não cobra comissão e não guarda currículos.
Que tipo de vaga é esta?
Uma vaga totalmente remota na área de TI e programação. Anúncios híbridos e tudo o que exige presença no escritório não são publicados neste quadro.
Certificados gratuitos para esta vaga
Os certificados gratuitos que mais pesam nesta área. Cada um é conferido na própria página da instituição que o emite.
Applied Skills (scenario-based credentials)
exam is free tooMicrosoft · ~1 h
Microsoft's only free verifiable credential: a lab task in 30-45 minutes, with no proctor, no ID check and no card. Retakes are allowed.
It has to be finished in one session; there is no save and resume.
strong brandOCI Foundations Associate
exam is free tooOracle · ~12 h
A rare case where the certification exam itself is free and needs no Pearson VUE: you sit it inside MyLearn. Take the 2026 track, not the 2025 one.
Oracle's pages load via JS; confirm the $0 on the final step of registration.
strong brandValid: 18-24 monthsCS50x: Introduction to Computer Science
certificateHarvard CS50 · ~100 h
Harvard's own branded certificate is free once you pass every problem set and the final project. The edX verified certificate is a separate paid product and is not needed.
strong brandCS50P: Programming with Python
certificateHarvard CS50 · ~60 h
Same mechanism as CS50x: at least 70% on every assignment plus a final project. The certificate does not expire.
strong brand
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