JobBERT-v2 / README.md
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Add new SentenceTransformer model.
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metadata
base_model: sentence-transformers/all-mpnet-base-v2
library_name: sentence-transformers
pipeline_tag: sentence-similarity
tags:
  - sentence-transformers
  - sentence-similarity
  - feature-extraction
  - generated_from_trainer
  - dataset_size:5579240
  - loss:CachedMultipleNegativesRankingLoss
widget:
  - source_sentence: Program Coordinator RN
    sentences:
      - >-
        discuss the medical history of the healthcare user, evidence-based
        approach in general practice, apply various lifting techniques,
        establish daily priorities, manage time, demonstrate disciplinary
        expertise, tolerate sitting for long periods, think critically, provide
        professional care in nursing, attend meetings, represent union members,
        nursing science, manage a multidisciplinary team involved in patient
        care, implement nursing care, customer service, work under supervision
        in care, keep up-to-date with training subjects, evidence-based nursing
        care, operate lifting equipment, follow code of ethics for biomedical
        practices, coordinate care, provide learning support in healthcare
      - >-
        provide written content, prepare visual data, design computer network,
        deliver visual presentation of data, communication, operate relational
        database management system, ICT communications protocols, document
        management, use threading techniques, search engines, computer science,
        analyse network bandwidth requirements, analyse network configuration
        and performance, develop architectural plans, conduct ICT code review,
        hardware architectures, computer engineering, video-games
        functionalities, conduct web searches, use databases, use online tools
        to collaborate
      - >-
        nursing science, administer appointments, administrative tasks in a
        medical environment, intravenous infusion, plan nursing care, prepare
        intravenous packs, work with nursing staff, supervise nursing staff,
        clinical perfusion
  - source_sentence: Director of Federal Business Development and Capture Mgmt
    sentences:
      - >-
        develop business plans, strive for company growth, develop personal
        skills, channel marketing, prepare financial projections, perform market
        research, identify new business opportunities, market research, maintain
        relationship with customers, manage government funding, achieve sales
        targets, build business relationships, expand the network of providers,
        make decisions, guarantee customer satisfaction, collaborate in the
        development of marketing strategies, analyse business plans, think
        analytically, develop revenue generation strategies, health care
        legislation, align efforts towards business development, assume
        responsibility, solve problems, deliver business research proposals,
        identify potential markets for companies
      - >-
        operate warehouse materials, goods transported from warehouse
        facilities, organise social work packages, coordinate orders from
        various suppliers, warehouse operations, work in assembly line teams,
        work in a logistics team, footwear materials
      - >-
        manufacturing plant equipment, use hand tools, assemble hardware
        components, use traditional toolbox tools, perform product testing,
        control panel components, perform pre-assembly quality checks, oversee
        equipment operation, assemble mechatronic units, arrange equipment
        repairs, assemble machines, build machines, resolve equipment
        malfunctions, electromechanics, develop assembly instructions, install
        hydraulic systems, revise quality control systems documentation, detect
        product defects, operate hydraulic machinery controls, show an exemplary
        leading role in an organisation, assemble manufactured pipeline parts,
        types of pallets, perform office routine activities, conform with
        production requirements, comply with quality standards related to
        healthcare practice
  - source_sentence: director of production
    sentences:
      - >-
        use customer relationship management software, sales strategies, create
        project specifications, document project progress, attend trade fairs,
        building automation, sales department processes, work independently,
        develop account strategy, build business relationships, facilitate the
        bidding process, close sales at auction, satisfy technical requirements,
        results-based management, achieve sales targets, manage sales teams,
        liaise with specialist contractors for well operations, sales
        activities, use sales forecasting softwares, guarantee customer
        satisfaction, integrate building requirements in the architectural
        design, participate actively in civic life, customer relationship
        management, implement sales strategies
      - >-
        translate strategy into operation, lead the brand strategic planning
        process, assist in developing marketing campaigns, implement sales
        strategies, sales promotion techniques, negotiate with employment
        agencies, perform market research, communicate with customers, develop
        media strategy, change power distribution systems, beverage products,
        project management, provide advertisement samples, devise military
        tactics, use microsoft office, market analysis, manage sales teams,
        create brand guidelines, brand marketing techniques, use sales
        forecasting softwares, supervise brand management, analyse packaging
        requirements, provide written content, hand out product samples, channel
        marketing
      - >-
        use microsoft office, use scripting programming, build team spirit,
        operate games, production processes, create project specifications,
        analyse production processes for improvement, manage production
        enterprise, Agile development, apply basic programming skills, document
        project progress, supervise game operations, work to develop physical
        ability to perform at the highest level in sport, fix meetings, office
        software, enhance production workflow, manage a team, set production
        KPI, manage commercial risks, work in teams, teamwork principles,
        address identified risks, meet deadlines, consult with production
        director
  - source_sentence: Nursing Assistant
    sentences:
      - >-
        supervise medical residents, observe healthcare users, provide domestic
        care, prepare health documentation, position patients undergoing
        interventions, work with broad variety of personalities, supervise food
        in healthcare, tend to elderly people, monitor patient's vital signs,
        transfer patients, show empathy, provide in-home support for disabled
        individuals, hygiene in a health care setting, supervise housekeeping
        operations, perform cleaning duties, monitor patient's health condition,
        provide basic support to patients, work with nursing staff, involve
        service users and carers in care planning, use electronic health records
        management system, arrange in-home services for patients, provide
        nursing care in community settings , work in shifts, supervise nursing
        staff
      - >-
        manage relationships with stakeholders, use microsoft office, maintain
        records of financial transactions, software components suppliers, tools
        for software configuration management, attend to detail, keep track of
        expenses, build business relationships, issue sales invoices, financial
        department processes, supplier management, process payments, perform
        records management, manage standard enterprise resource planning system
      - >-
        inspect quality of products, apply HACCP, test package, follow verbal
        instructions, laboratory equipment, assist in the production of
        laboratory documentation, ensure quality control in packaging, develop
        food safety programmes, packaging engineering, appropriate packaging of
        dangerous goods, maintain laboratory equipment, SAP Data Services,
        calibrate laboratory equipment, analyse packaging requirements, write
        English
  - source_sentence: Branch Manager
    sentences:
      - >-
        support employability of people with disabilities, schedule shifts,
        issue licences, funding methods, maintain correspondence records,
        computer equipment, decide on providing funds, tend filing machine, use
        microsoft office, lift stacks of paper, transport office equipment, tend
        to guests with special needs, provide written content, foreign affairs
        policy development, provide charity services, philanthropy, maintain
        financial records, meet deadlines, manage fundraising activities, assist
        individuals with disabilities in community activities, report on grants,
        prepare compliance documents, manage grant applications, tolerate
        sitting for long periods, follow work schedule
      - >-
        cook pastry products, create new recipes, food service operations,
        assess shelf life of food products, apply requirements concerning
        manufacturing of food and beverages, food waste monitoring systems,
        maintain work area cleanliness, comply with food safety and hygiene,
        coordinate catering, maintain store cleanliness, work according to
        recipe, health, safety and hygiene legislation, install refrigeration
        equipment, prepare desserts, measure precise food processing operations,
        conform with production requirements, work in an organised manner,
        demand excellence from performers, refrigerants, attend to detail,
        ensure food quality, manufacture prepared meals
      - >-
        teamwork principles, office administration, delegate responsibilities,
        create banking accounts, manage alarm system, make independent operating
        decisions, use microsoft office, offer financial services, ensure proper
        document management, own management skills, use spreadsheets software,
        manage cash flow, integrate community outreach, manage time, perform
        multiple tasks at the same time, carry out calculations, assess customer
        credibility, maintain customer service, team building, digitise
        documents, promote financial products, communication, assist customers,
        follow procedures in the event of an alarm, office equipment

SentenceTransformer based on sentence-transformers/all-mpnet-base-v2

This is a sentence-transformers model finetuned from sentence-transformers/all-mpnet-base-v2 on the generator dataset. It maps sentences & paragraphs to a 1024-dimensional dense vector space and can be used for semantic textual similarity, semantic search, paraphrase mining, text classification, clustering, and more.

Model Details

Model Description

  • Model Type: Sentence Transformer
  • Base model: sentence-transformers/all-mpnet-base-v2
  • Maximum Sequence Length: 64 tokens
  • Output Dimensionality: 1024 tokens
  • Similarity Function: Cosine Similarity
  • Training Dataset:
    • generator

Model Sources

Full Model Architecture

SentenceTransformer(
  (0): Transformer({'max_seq_length': 64, 'do_lower_case': False}) with Transformer model: MPNetModel 
  (1): Pooling({'word_embedding_dimension': 768, 'pooling_mode_cls_token': False, 'pooling_mode_mean_tokens': True, 'pooling_mode_max_tokens': False, 'pooling_mode_mean_sqrt_len_tokens': False, 'pooling_mode_weightedmean_tokens': False, 'pooling_mode_lasttoken': False, 'include_prompt': True})
  (2): Asym(
    (anchor-0): Dense({'in_features': 768, 'out_features': 1024, 'bias': True, 'activation_function': 'torch.nn.modules.activation.Tanh'})
    (positive-0): Dense({'in_features': 768, 'out_features': 1024, 'bias': True, 'activation_function': 'torch.nn.modules.activation.Tanh'})
  )
)

Usage

Direct Usage (Sentence Transformers)

First install the Sentence Transformers library:

pip install -U sentence-transformers

Then you can load this model and run inference.

from sentence_transformers import SentenceTransformer

# Download from the 🤗 Hub
model = SentenceTransformer("jensjorisdecorte/JobBERT-v2")
# Run inference
sentences = [
    'Branch Manager',
    'teamwork principles, office administration, delegate responsibilities, create banking accounts, manage alarm system, make independent operating decisions, use microsoft office, offer financial services, ensure proper document management, own management skills, use spreadsheets software, manage cash flow, integrate community outreach, manage time, perform multiple tasks at the same time, carry out calculations, assess customer credibility, maintain customer service, team building, digitise documents, promote financial products, communication, assist customers, follow procedures in the event of an alarm, office equipment',
    'support employability of people with disabilities, schedule shifts, issue licences, funding methods, maintain correspondence records, computer equipment, decide on providing funds, tend filing machine, use microsoft office, lift stacks of paper, transport office equipment, tend to guests with special needs, provide written content, foreign affairs policy development, provide charity services, philanthropy, maintain financial records, meet deadlines, manage fundraising activities, assist individuals with disabilities in community activities, report on grants, prepare compliance documents, manage grant applications, tolerate sitting for long periods, follow work schedule',
]
embeddings = model.encode(sentences)
print(embeddings.shape)
# [3, 1024]

# Get the similarity scores for the embeddings
similarities = model.similarity(embeddings, embeddings)
print(similarities.shape)
# [3, 3]

Training Details

Training Dataset

generator

  • Dataset: generator
  • Size: 5,579,240 training samples
  • Columns: anchor and positive
  • Approximate statistics based on the first 1000 samples:
    anchor positive
    type string string
    details
    • min: 3 tokens
    • mean: 7.95 tokens
    • max: 30 tokens
    • min: 18 tokens
    • mean: 59.33 tokens
    • max: 64 tokens
  • Samples:
    anchor positive
    CAD Designer - Fire Sprinkler - Milwaukee - Relocation coordinate construction activities, oversee construction project, fire protection engineering, install fire sprinklers, hydraulics, construction industry, create AutoCAD drawings, design sprinkler systems, inspect construction sites, design drawings, supervise sewerage systems construction, prepare site for construction, building codes, communicate with construction crews
    RN Practitioner assume responsibility, financial statements, manage work, implement fundamentals of nursing, diagnose advanced nursing care, diagnose nursing care, specialist nursing care, nursing principles, provide nursing advice on healthcare, apply nursing care in long-term care, prescribe advanced nursing care, plan advanced nursing care, nursing science, implement nursing care, develop financial statistics reports, clinical decision-making at advanced practice, prepare financial statements, create a financial report, produce statistical financial records, operate in a specific field of nursing care
    Respiratory Therapist Travel Positions (BB-160B7) respiratory therapy, comply with quality standards related to healthcare practice, provide information, primary care, record treated patient's information, formulate a treatment plan, carry out treatment prescribed by doctors, develop patient treatment strategies
  • Loss: CachedMultipleNegativesRankingLoss with these parameters:
    {
        "scale": 20.0,
        "similarity_fct": "cos_sim"
    }
    

Training Hyperparameters

Non-Default Hyperparameters

  • overwrite_output_dir: True
  • per_device_train_batch_size: 2048
  • per_device_eval_batch_size: 2048
  • num_train_epochs: 1
  • fp16: True

All Hyperparameters

Click to expand
  • overwrite_output_dir: True
  • do_predict: False
  • eval_strategy: no
  • prediction_loss_only: True
  • per_device_train_batch_size: 2048
  • per_device_eval_batch_size: 2048
  • per_gpu_train_batch_size: None
  • per_gpu_eval_batch_size: None
  • gradient_accumulation_steps: 1
  • eval_accumulation_steps: None
  • torch_empty_cache_steps: None
  • learning_rate: 5e-05
  • weight_decay: 0.0
  • adam_beta1: 0.9
  • adam_beta2: 0.999
  • adam_epsilon: 1e-08
  • max_grad_norm: 1.0
  • num_train_epochs: 1
  • max_steps: -1
  • lr_scheduler_type: linear
  • lr_scheduler_kwargs: {}
  • warmup_ratio: 0.0
  • warmup_steps: 0
  • log_level: passive
  • log_level_replica: warning
  • log_on_each_node: True
  • logging_nan_inf_filter: True
  • save_safetensors: True
  • save_on_each_node: False
  • save_only_model: False
  • restore_callback_states_from_checkpoint: False
  • no_cuda: False
  • use_cpu: False
  • use_mps_device: False
  • seed: 42
  • data_seed: None
  • jit_mode_eval: False
  • use_ipex: False
  • bf16: False
  • fp16: True
  • fp16_opt_level: O1
  • half_precision_backend: auto
  • bf16_full_eval: False
  • fp16_full_eval: False
  • tf32: None
  • local_rank: 0
  • ddp_backend: None
  • tpu_num_cores: None
  • tpu_metrics_debug: False
  • debug: []
  • dataloader_drop_last: False
  • dataloader_num_workers: 0
  • dataloader_prefetch_factor: None
  • past_index: -1
  • disable_tqdm: False
  • remove_unused_columns: True
  • label_names: None
  • load_best_model_at_end: False
  • ignore_data_skip: False
  • fsdp: []
  • fsdp_min_num_params: 0
  • fsdp_config: {'min_num_params': 0, 'xla': False, 'xla_fsdp_v2': False, 'xla_fsdp_grad_ckpt': False}
  • fsdp_transformer_layer_cls_to_wrap: None
  • accelerator_config: {'split_batches': False, 'dispatch_batches': None, 'even_batches': True, 'use_seedable_sampler': True, 'non_blocking': False, 'gradient_accumulation_kwargs': None}
  • deepspeed: None
  • label_smoothing_factor: 0.0
  • optim: adamw_torch
  • optim_args: None
  • adafactor: False
  • group_by_length: False
  • length_column_name: length
  • ddp_find_unused_parameters: None
  • ddp_bucket_cap_mb: None
  • ddp_broadcast_buffers: False
  • dataloader_pin_memory: True
  • dataloader_persistent_workers: False
  • skip_memory_metrics: True
  • use_legacy_prediction_loop: False
  • push_to_hub: False
  • resume_from_checkpoint: None
  • hub_model_id: None
  • hub_strategy: every_save
  • hub_private_repo: False
  • hub_always_push: False
  • gradient_checkpointing: False
  • gradient_checkpointing_kwargs: None
  • include_inputs_for_metrics: False
  • eval_do_concat_batches: True
  • fp16_backend: auto
  • push_to_hub_model_id: None
  • push_to_hub_organization: None
  • mp_parameters:
  • auto_find_batch_size: False
  • full_determinism: False
  • torchdynamo: None
  • ray_scope: last
  • ddp_timeout: 1800
  • torch_compile: False
  • torch_compile_backend: None
  • torch_compile_mode: None
  • dispatch_batches: None
  • split_batches: None
  • include_tokens_per_second: False
  • include_num_input_tokens_seen: False
  • neftune_noise_alpha: None
  • optim_target_modules: None
  • batch_eval_metrics: False
  • eval_on_start: False
  • eval_use_gather_object: False
  • batch_sampler: batch_sampler
  • multi_dataset_batch_sampler: proportional

Training Logs

Epoch Step Training Loss
0.1835 500 3.6354
0.3670 1000 3.1788
0.5505 1500 2.9969
0.7339 2000 2.9026
0.9174 2500 2.8421

Framework Versions

  • Python: 3.9.19
  • Sentence Transformers: 3.1.0
  • Transformers: 4.44.2
  • PyTorch: 2.4.1+cu118
  • Accelerate: 0.34.2
  • Datasets: 3.0.0
  • Tokenizers: 0.19.1

Citation

BibTeX

Sentence Transformers

@inproceedings{reimers-2019-sentence-bert,
    title = "Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks",
    author = "Reimers, Nils and Gurevych, Iryna",
    booktitle = "Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing",
    month = "11",
    year = "2019",
    publisher = "Association for Computational Linguistics",
    url = "https://arxiv.org/abs/1908.10084",
}

CachedMultipleNegativesRankingLoss

@misc{gao2021scaling,
    title={Scaling Deep Contrastive Learning Batch Size under Memory Limited Setup},
    author={Luyu Gao and Yunyi Zhang and Jiawei Han and Jamie Callan},
    year={2021},
    eprint={2101.06983},
    archivePrefix={arXiv},
    primaryClass={cs.LG}
}