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Lora Jobs in Seattle, WA (NOW HIRING)

Lead AI Engineer

Bellevue, WA ยท On-site

$115K - $151K/yr

... as LoRA, PEFT, and instruction tuning. โ€ข Develop and evaluate embedding models for similarity search and semantic retrieval. โ€ข Conduct LLM evaluation using automated and human-in-the-loop ...

Lead AI Engineer

Bellevue, WA ยท On-site

$155K - $167K/yr

Fine-tune models using techniques such as LoRA , PEFT , and instruction tuning . * Develop and evaluate embedding models for similarity search and semantic retrieval. * Conduct LLM evaluation using ...

AI Research Engineer- Speech 1

Redmond, WA ยท On-site

$229K/yr

Research and implement alignment mechanisms between speech encoders and LLM backbones using lightweight adapters, LoRA, and efficient fine-tuning strategies. Design efficient speech tokenization and ...

Working knowledge of generative AI fundamentalse.g.diffusionmodels,LoRA/fine-tuning, ControlNet-style conditioning, prompt engineering, andevaluationmetrics (FID, CLIP, perceptual loss). Youdon'tneed ...

AI Research Engineer- Speech 1

Redmond, WA ยท On-site

$150 - $160/hr

Research and implement alignment mechanisms between speech encoders and LLM backbones using lightweight adapters, LoRA, and efficient fine-tuning strategies. * Design efficient speech tokenization ...

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Lora information

See Seattle, WA salary details

$9

$28

$66

How much do lora jobs pay per hour?

As of Aug 28, 2026, the average hourly pay for lora in Seattle, WA is $28.51, according to ZipRecruiter salary data. Most workers in this role earn between $16.39 and $33.30 per hour, depending on experience, location, and employer.

What is a LoRa job?

Lora jobs typically refer to positions involving the use or development of LoRa (Long Range) technology, which is a wireless communication protocol designed for long-range, low-power, and low-data-rate applications. These roles are commonly found in the Internet of Things (IoT) industry, where professionals work on deploying, maintaining, or optimizing devices and networks that use LoRaWAN (LoRa Wide Area Network) for data transmission. Responsibilities may include designing IoT solutions, configuring LoRa gateways, developing firmware, and ensuring secure and efficient communication between devices. LoRa jobs can be found in sectors like agriculture, smart cities, logistics, and environmental monitoring.

What skills and qualifications are needed to thrive as a LoRa network engineer?

To thrive as a LoRa Network Engineer, you need a solid background in wireless communication, networking protocols, and IoT systems, typically supported by a degree in electrical engineering, computer science, or related fields. Familiarity with LoRaWAN architecture, radio frequency (RF) tools, and industry certifications such as Cisco or IoT-specific credentials are commonly required. Strong problem-solving skills, attention to detail, and effective communication enable you to design, deploy, and troubleshoot scalable LoRa networks. These skills ensure reliable connectivity, efficient network operation, and the successful integration of IoT solutions across various industries.

What are common challenges faced by LoRa network engineers when deploying LoRaWAN solutions?

Lora network engineers often encounter challenges such as ensuring reliable signal coverage across large or obstructed areas, managing interference from other wireless devices, and optimizing device battery life. Additionally, they must carefully plan gateway placement and network architecture to balance coverage and cost-effectiveness. Collaborating with cross-functional teams, such as hardware engineers and IT specialists, is also essential to ensure seamless integration and ongoing network maintenance.

What is the difference between Lora vs Radio Frequency (RF) Technician?

AspectLoraRadio Frequency (RF) Technician
Required CredentialsCertifications in IoT, wireless communication, or specific Lora trainingFCC licensing, RF certifications, technical diplomas
Work EnvironmentIoT networks, wireless sensor deployments, outdoor/indoor environmentsTelecom sites, broadcast stations, equipment testing labs
Employer & Industry UsageIoT device manufacturers, smart city projects, wireless sensor networksTelecom companies, broadcast media, wireless service providers

While Lora specialists focus on deploying and managing Lora-based IoT networks, RF Technicians work with a broader range of wireless communication systems, including radio, cellular, and broadcast technologies. Both roles require technical knowledge of wireless systems but differ in their specific applications and environments.

What are popular job titles related to Lora jobs in Seattle, WA?

For Lora jobs in Seattle, WA, the most frequently searched job titles are:

What job categories do people searching Lora jobs in Seattle, WA look for?

The top searched job categories for Lora jobs in Seattle, WA are:

Infographic showing various Lora job openings in Seattle, WA as of August 2026, with employment types broken down into 1% Internship, 91% Full Time, 4% Part Time, and 4% Contract. Highlights an 84% Physical, 5% Hybrid, and 11% Remote job distribution, with an average salary of $59,301 per year, or $28.5 per hour.

AI Research Engineer- Speech 1

Redmond, WA โ€ข On-site

$150 - $160/hr

Other

Posted 9 days ago


Job description

Key Responsibilities
  • Design, develop, and deploy Large Audio Language Models (LALMs) capable of native audio understanding, reasoning, and generation.
  • Build Large Audio Reasoning Models that perform complex chain-of-thought reasoning over speech and audio inputs across medical, technical, and conversational domains.
  • Contribute to Speech-to-Speech (S2S) system development, including speech understanding, dialogue management, and speech synthesis components.
  • Research and implement alignment mechanisms between speech encoders and LLM backbones using lightweight adapters, LoRA, and efficient fine-tuning strategies.
  • Design efficient speech tokenization and temporal compression techniques suitable for longโ€‘form audio reasoning and multiโ€‘turn spoken dialogue.
  • Build comprehensive evaluation frameworks for audio reasoning capabilities, including benchmarks for speech QA, audio understanding, and reasoning accuracy.
  • Optimize inference pipelines for lowโ€‘latency, streaming applications in speech systems.
  • Collaborate with crossโ€‘functional teams to transfer research innovations into production systems and customerโ€‘facing applications.
  • Contribute to technical documentation, research writeโ€‘ups, and publications at topโ€‘tier venues (NeurIPS, ICML, ACL, Interspeech).
Minimum Qualifications
  • Master's degree (required) or Ph.D. (preferred) in Computer Science, Electrical Engineering, or a related field with a focus on speech, audio ML, or multimodal learning.
  • 2+ years of industry or applied research experience in speech/audio AI, Large Language Models, or multimodal systems.
  • Demonstrated applied research contributions through publications, patents, or shipped products in speech/audio AI or LLMs.
  • Strong proficiency in Python and PyTorch, with handsโ€‘on experience in GPUโ€‘accelerated training for largeโ€‘scale models.
  • Solid understanding of speech and audio signal processing, acoustic modeling, and audio representations.
  • Working knowledge of modern LLM architectures (Transformers, SSMs) and training paradigms including instruction tuning and alignment methods.
  • Familiarity with modality alignment techniques: adapterโ€‘based integration, crossโ€‘modal attention, or audioโ€‘text fusion methods.
  • Strong experimentation habits: clean code, systematic ablations, reproducibility, and clear technical communication.
Preferred Qualifications
  • Publication record at topโ€‘tier venues (NeurIPS, ICML, ICLR, ACL, Interspeech, ICASSP) in audio language models, speech reasoning, or multimodal learning.
  • Handsโ€‘on experience building or fineโ€‘tuning Large Audio Language Models (e.g., Qwenโ€‘Audio, SALMONN, LTU, Gemini Audio).
  • Experience with speech representation pretraining (HuBERT, Wav2Vec2.0, Whisper, WavLM) and discrete speech tokenization.
  • Familiarity with Speechโ€‘toโ€‘Speech components: neural audio codecs (EnCodec, SoundStream), vocoders, or speech synthesis systems.
  • Experience with audio reasoning benchmarks (AIRโ€‘Bench, MMAU, AudioBench) or building evaluation harnesses for audio QA.
  • Handsโ€‘on experience with distributed training (FSDP, DeepSpeed) and inference optimization (ONNX, TensorRT, quantization).
  • Familiarity with speech frameworks such as ESPnet, SpeechBrain, NVIDIA NeMo, or Fairseq.
  • Experience with multilingual speech systems, codeโ€‘switching, or domain adaptation for specialized applications (medical, legal, technical).
  • Background in evaluating safety, bias, hallucination, or adversarial robustness in audio language models.
Technical Environment
  • Core: PyTorch, CUDA, torchaudio/librosa, Hugging Face Transformers.
  • LLM Stack: Large language model backbones, lightweight adapters (LoRA, Qโ€‘Former), instruction tuning pipelines.
  • Audio Models: Neural audio codecs, speech encoders, vocoders, discrete speech tokenizers.
  • Infrastructure: Modern GPU clusters, experiment tracking (Weights & Biases), distributed training frameworks.
  • Deployment: FastAPI/gRPC for services, ONNX/TensorRT for optimized inference.
What We Offer
  • Competitive compensation package with comprehensive benefits.
  • Opportunity to work on cuttingโ€‘edge Large Audio Language Models and audio reasoning research with realโ€‘world impact.
  • Collaboration with experienced applied scientists and engineers in speech and multimodal AI.
  • Support for publications at topโ€‘tier conferences and professional development.
  • Access to stateโ€‘ofโ€‘theโ€‘art GPU infrastructure for training largeโ€‘scale audio models.
  • Flexible work arrangements with hybrid/remote options.

Location: Redmond, WA / Palo Alto, CA / Remote

Salary: $150โ€‘$160k Annually.

Centific is an equalโ€‘opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, national origin, ancestry, citizenship status, age, mental or physical disability, medical condition, sex (including pregnancy), gender identity or expression, sexual orientation, marital status, familial status, veteran status or any other characteristic protected by applicable law. We consider qualified applicants regardless of criminal histories, consistent with legal requirements.

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